WO1996039572A1 - Engine compression braking apparatus and method - Google Patents

Engine compression braking apparatus and method Download PDF

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Publication number
WO1996039572A1
WO1996039572A1 PCT/US1996/006326 US9606326W WO9639572A1 WO 1996039572 A1 WO1996039572 A1 WO 1996039572A1 US 9606326 W US9606326 W US 9606326W WO 9639572 A1 WO9639572 A1 WO 9639572A1
Authority
WO
WIPO (PCT)
Prior art keywords
control
braking
valve
engine
braking control
Prior art date
Application number
PCT/US1996/006326
Other languages
French (fr)
Inventor
James J. Faletti
Dennis D. Feucht
Scott G. Sinn
Original Assignee
Caterpillar Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US08/468,937 external-priority patent/US5540201A/en
Application filed by Caterpillar Inc. filed Critical Caterpillar Inc.
Priority to EP96913352A priority Critical patent/EP0774051B1/en
Priority to DE69629089T priority patent/DE69629089T2/en
Priority to JP9500513A priority patent/JPH10504082A/en
Publication of WO1996039572A1 publication Critical patent/WO1996039572A1/en

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02DCONTROLLING COMBUSTION ENGINES
    • F02D13/00Controlling the engine output power by varying inlet or exhaust valve operating characteristics, e.g. timing
    • F02D13/02Controlling the engine output power by varying inlet or exhaust valve operating characteristics, e.g. timing during engine operation
    • F02D13/04Controlling the engine output power by varying inlet or exhaust valve operating characteristics, e.g. timing during engine operation using engine as brake
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01LCYCLICALLY OPERATING VALVES FOR MACHINES OR ENGINES
    • F01L13/00Modifications of valve-gear to facilitate reversing, braking, starting, changing compression ratio, or other specific operations
    • F01L13/06Modifications of valve-gear to facilitate reversing, braking, starting, changing compression ratio, or other specific operations for braking
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01LCYCLICALLY OPERATING VALVES FOR MACHINES OR ENGINES
    • F01L13/00Modifications of valve-gear to facilitate reversing, braking, starting, changing compression ratio, or other specific operations
    • F01L13/06Modifications of valve-gear to facilitate reversing, braking, starting, changing compression ratio, or other specific operations for braking
    • F01L13/065Compression release engine retarders of the "Jacobs Manufacturing" type
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B75/00Other engines
    • F02B75/02Engines characterised by their cycles, e.g. six-stroke
    • F02B2075/022Engines characterised by their cycles, e.g. six-stroke having less than six strokes per cycle
    • F02B2075/025Engines characterised by their cycles, e.g. six-stroke having less than six strokes per cycle two
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B75/00Other engines
    • F02B75/16Engines characterised by number of cylinders, e.g. single-cylinder engines
    • F02B75/18Multi-cylinder engines
    • F02B2075/1804Number of cylinders
    • F02B2075/1824Number of cylinders six
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F02COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
    • F02BINTERNAL-COMBUSTION PISTON ENGINES; COMBUSTION ENGINES IN GENERAL
    • F02B3/00Engines characterised by air compression and subsequent fuel addition
    • F02B3/06Engines characterised by air compression and subsequent fuel addition with compression ignition

Definitions

  • the present invention relates generally to engine retarding systems and methods and, more particularly, to an apparatus and method for engine compression braking using electronically controlled hydraulic actuation.
  • Engine brakes or retarders are used to assist and supplement wheel brakes in slowing heavy vehicles, such as tractor-trailers.
  • Engine brakes are desirable because they help alleviate wheel brake overheating.
  • vehicle design and technology have advanced, the hauling capacity of tractor-trailers has increased, while at the same time rolling resistance and wind resistance have decreased.
  • advanced engine braking systems in todays heavy vehicles.
  • Known engine compression brakes convert an internal combustion engine from a power generating unit into a power consuming air compressor.
  • An actuator includes a master piston, driven by a cam and pushrod, which in turn drives a slave piston to open the exhaust valve during engine braking.
  • the braking that can be accomplished by the Cummins device is limited because the timing and duration of the opening of the exhaust valve is dictated by the geometry of the cam which drives the master piston and hence these parameters cannot be independently controlled.
  • braking systems In conjunction with the increasingly widespread use of electronic controls in engine systems, braking systems have been developed which are electronically controlled by a central engine control unit which optimizes the performance of the braking system.
  • U.S. Patent No. 5,012,778 issued to Pitzi on 7 May 1991 discloses an engine braking system which includes a solenoid actuated servo valve hydraulically linked to an exhaust valve actuator. Hydraulic pressure (on the order of 3000 psi) is supplied by a high pressure hydraulic pump which supplies a high pressure plenum. A pressure regulator disposed between the high pressure hydraulic pump and the high pressure plenum maintains operating hydraulic pressure below a desired limit.
  • the servo valve disclosed in Pitzi '778 includes a high pressure source duct leading from the high pressure plenum, an actuator duct leading from the servo valve to the exhaust valve actuator and a drain duct.
  • the servo valve has two operating positions. In a first or closed position, the high pressure duct is blocked and the actuator duct is in fluid communication with the drain duct. In this first position, pressure in the exhaust valve actuator is relieved through the drain duct to place the exhaust valve actuator in a rest position out of contact with the exhaust valve. In a second or open position, the drain duct is blocked and the high pressure duct is in fluid communication with the exhaust valve actuator.
  • the exhaust valve actuator disclosed in the Pitzi '778 patent comprises a piston which, when subjected to sufficient hydraulic pressure, is driven into contact with a contact plate attached to an exhaust valve stem, thereby opening the exhaust valve.
  • An electronic controller activates the solenoid of the servo valve.
  • a group of switches are connected in series to the controller and the controller also receives inputs from a crankshaft position sensor and an engine speed sensor.
  • a pushtube of the engine reciprocates a rocker arm and a master piston so that pressurized fluid is delivered and stored in a high pressure accumulator.
  • a three-way solenoid valve is operable by an electronic controller to selectively couple the accumulator to a slave bore having a slave piston disposed therein.
  • the slave piston is responsive to the admittance of the pressurized fluid from the accumulator into the slave bore to move an exhaust valve crosshead and thereby open a pair of exhaust valves.
  • the use of an electronic controller allows braking performance to be maximized independent of restraints resulting from mechanical limitations.
  • the valve timing may be varied as a function of engine speed to optimize the retarding horsepower developed by the engine.
  • a brake control according to the present invention provides selectable control over the timing and duration of exhaust valve opening to permit high braking levels to be achieved and infinitely variable selection of braking levels.
  • a braking control for an engine having a combustion chamber and an exhaust port moveable between open and closed positions wherein the engine is operable to undergo engine events each of which occurs at a timing point includes electrohydraulic means for engaging the exhaust valve and control means.
  • the control means is capable of timing movement of the exhaust valve to the open position selectably independent of the timing points to thereby permit selection of an adjustable braking magnitude.
  • the control means includes means for storing actuation points and means for selecting actuation points from the storing means.
  • a braking control for an engine having a combustion chamber and an exhaust valve movable between open and closed positions wherein the engine is operable to undergo engine events each of which occurs at a timing point includes an electrically- operable control valve and an actuator coupled between the control valve.
  • the actuator is operable by the control valve to move the exhaust valve to an open position.
  • An electronic engine control is coupled to the control valve for operating same to move the exhaust valve to the open position selectably independent of the timing points to thereby permit selection of an adjustable braking magnitude.
  • the engine control includes a look-up table for storing actuation points, selection circuitry for selecting actuation points from the storing means and drive circuity for developing drive signals for the control valve.
  • Fig. 1 is a fragmentary isometric view of an internal combustion engine with portions removed to reveal detail therein and with which the braking control of the present invention may be used;
  • Fig. 2 comprises a sectional view of the engine of Fig. 1;
  • Fig. 3 comprises a graph illustrating cylinder pressure as a function of crankshaft angle in braking and motoring modes of operation of an engine;
  • Fig. 4A comprises a graph illustrating braking power as a function of compression release timing of an engine
  • Fig. 4B comprises a graph illustrating percent braking horsepower as a function of valve open duration
  • Fig. 5 comprises a combined block and schematic diagram of a braking control according to the present invention
  • Fig. 6 comprises a combined block and schematic diagram of an alternative embodiment of the brake control of the present invention.
  • Fig. 7 comprises a perspective view of hydromechanical hardware for implementing the control of the present invention
  • Fig. 8 comprises an end elevational view of the hardware of Fig. 7;
  • Fig. 9 comprises a plan view of the hardware of Fig. 7 with structures removed therefrom to the right of the section line 12-12 to more clearly illustrate the design thereof;
  • Figs. 10 and 11 are front and rear elevational views, respectively, of the hardware of Fig. 9;
  • Figs. 12, 13, 14, 15 and 17 are sectional views taken generally along the lines 12-12, 13-13, 14-14, 15-15 and 17-17, respectively, of Fig. 9;
  • Fig. 16 is an enlarged fragmentary view of a portion of Fig. 15;
  • Figs. 18 and 19 are composite sectional views illustrating the operation of the actuator of Figs. 7-17;
  • Fig. 20 is a block diagram illustrating output and driver circuits of an engine control module (ECM) , a plurality of unit injectors and a plurality of braking controls according to the present invention;
  • ECM engine control module
  • Fig. 21 comprises a block diagram of the balance of electrical hardware of the ECM
  • Fig. 22 comprises a three-dimensional representation of a map relating solenoid control valve actuation and deactuation timing as a function of desired braking magnitude and turbocharger boost magnitude;
  • Fig. 23 comprises a block diagram of software executed by the ECM to implement the braking control module of Fig. 21;
  • Fig. 24 is a graph illustrating exhaust valve lift as a function of crankshaft angle
  • Fig. 25 is a graph illustrating cylinder pressure and exhaust manifold pressure as a function of crankshaft angle
  • Fig. 26 is a sectional view similar to Fig. 12 illustrating an alternative accumulator according to the present invention.
  • Figs. 27-29 are sectional views similar to Fig. 17 illustrating alternative actuators according to the present invention.
  • Fig. 30 is a view similar to Fig. 16 illustrating a poppet valve which may be substituted for the valve of Figs. 15-19 according to an alternative embodiment of the present invention.
  • an internal combustion engine 30, which may be of the four-cycle, compression ignition type, undergoes a series of engine events during operation thereof.
  • the engine sequentially and repetitively undergoes intake, compression, combustion and exhaust cycles during operation.
  • the engine 30 includes a block 32 within which is formed a plurality of combustion chambers or cylinders 34, each of which includes an associated piston 36 therein.
  • Intake valves 38 and exhaust valves 40 are carried in a head 41 bolted to the block 32 and operated to control the admittance and expulsion of fuel and gases into and out of each cylinder 34.
  • a crankshaft 42 is coupled to and rotated by the pistons 36 via connecting rods 44 and a camshaft 46 is coupled to and rotates with the crankshaft 42 in synchronism therewith.
  • the camshaft 46 includes a plurality of cam lobes 48 (one of which is visible in Fig. 2) which are contacted by cam followers 50 (Fig. 2) carried by rocker arms 54, 55 which in turn bear against intake and exhaust valves 38, 40, respectively.
  • cam followers 50 Fig. 2 carried by rocker arms 54, 55 which in turn bear against intake and exhaust valves 38, 40, respectively.
  • Figs. 1 and 2 there is a pair of intake valves 38 and a pair of exhaust valves 40 per cylinder 34 wherein the valve 38 or 40 of each pair is interconnected by a valve bridge 39, 43, respectively.
  • Each cylinder 34 may instead have a different number of associated intake and exhaust valves 38, 40, as necessary or desirable.
  • the graphs of Figs. 3 and 4A illustrate cylinder pressure and braking horsepower, respectively, as a function of crankshaft angle relative to top dead center (TDC) .
  • TDC top dead center
  • the exhaust valves 40 of each cylinder 34 are opened at a time t x prior to TDC so that the work expended in compressing the gases within the cylinder 34 is not recovered by the crankshaft 42.
  • the resulting effective braking by the engine is proportional to the difference between the area under the curve 62 prior to TDC and the area under the curve 62 after TDC. This difference, and hence the effective braking, can be changed by changing the time t 2 at which the exhaust valves 40 are opened during the compression stroke. This relationship is illustrated by the graph of Fig. 4A.
  • the duration of time the exhaust valves are maintained in an open state also has an effect upon the maximum braking horsepower which can be achieved.
  • a two-cylinder portion 70 of a brake control is illustrated.
  • the portion 70 of the brake control illustrated in Fig. 5 is operated by an electronic control module (ECM) 72 to open the exhaust 40 of two cylinders 34 with a selectable timing and duration of exhaust valve opening.
  • ECM electronice control module
  • up to three of the portions 70 in Fig. 5 could be connected to the ECM 72 so that engine braking is accomplished on a cylinder-by-cylinder basis.
  • fewer than three portions 70 could be used and/or operated so that braking is accomplished by less than all of the cylinders and pistons.
  • the portion 70 can be modified to operate any other number of exhaust valves for any other number of cylinders, as desired.
  • the ECM 72 operates a solenoid control valve 74 to couple a conduit 76 to a conduit 78.
  • the conduit 76 receives engine oil at supply pressure, and hence operating the solenoid control valve 74 permits engine oil to be delivered to conduits 80, 82 which are in fluid communication with check valves 84, 86, respectively.
  • the engine oil under pressure causes pistons of a pair of reciprocating pumps 88, 90 to extend and contact drive sockets of injector rocker arms (described and shown below) .
  • the rocker arms cause the pistons to reciprocate and cause oil to be supplied under pressure through check valves, 92, 94 and conduits 96, 98 to an accumulator 100.
  • check valves, 92, 94 and conduits 96, 98 to an accumulator 100.
  • the accumulator does not include a movable member, such as a piston or bladder, although such a movable member could be included therein, if desired.
  • the accumulator includes a pressure control valve 104 which vents engine oil to sump when a predetermined pressure is exceeded, for example 6,000 p.s.i.
  • the conduit 96 and accumulator 100 are further coupled to a pair of solenoid control valves 106, 108 and a pair of servo-actuators 110, 112.
  • the servo-actuators 110, 112 are coupled by conduits 114, 116 to the pumps 88, 90 via the check valves 84, 86, respectively.
  • the solenoid control valves 106, 108 are further coupled by conduits 118, 120 to sump.
  • the ECM 72 closes the solenoid control valve 74 and operates the solenoid control valves 106, 108 to cause the servo-actuators 110, 112 to contact valve bridges 43 and open associated exhaust valves 40 in associated cylinders 34 near the end of a compression stroke.
  • the control of Fig. 5 may be modified such that a different number of cylinders is serviced by each accumulator. In fact, by providing an accumulator with sufficient capacity, all of the engine cylinders may be served thereby.
  • Fig. 6 illustrates an alternative embodiment of the present invention wherein elements common to Figs. 5 and 6 are assigned like reference numbers.
  • the solenoid control valve 74, the check valves 84, 86, 92 and 94 and the pumps 88 and 90 are replaced by a high pressure pump 130 which is controlled by the ECM 72 to pressurize engine oil to a high level, for example, 6,000 p.s.i.
  • Figs. 7-17 illustrate mechanical hardware for implementing the control of Fig. 5.
  • a main body 132 includes a bridging portion 134. Threaded studs 135 extend through the main body 132 and spacers 136 into the head 41 and nuts 137 are threaded onto the studs 135.
  • four bolts 138 extend through the main body 132 into the head 41. The bolts 138 replace rocker arm shaft hold down bolts and not only serve to secure the main body 132 to the head 41, but also extend through and hold a rocker arm shaft 139 in position.
  • a pair of actuator receiving bores 140, 142 are formed in the bridging portion 134.
  • the servo- actuator 110 is received within the actuator receiving bore 140 while the servo-actuator 112 (not shown in Figs. 7-17) is received within the receiving bore 142.
  • the actuators 110 and 112 are identical, only the actuator 110 will be described in greater detail hereinafter.
  • a cavity 146 is formed within the bridging portion 134 and comprises the accumulator 100 described above.
  • the cavity 146 is in fluid communication with a high pressure passage or manifold 148 which is in turn coupled by the check valve 92 and a passage 149 to a bore 150 forming a portion of the pump unit 88.
  • a piston 152 is disposed within the bore 150 (the top of which is just visible in Fig. 13) and is coupled to a connecting rod 154 which is adapted to contact a fuel injector rocker arm 156, seen in Figs. 1 and 7.
  • a spring 157 surrounds the connecting rod 154 and is disposed between a shoulder on the connecting rod 154 and a stop 158.
  • reciprocation of the fuel injector rocker arm 156 alternately introduces crankcase oil through an inlet fitting 159 (seen only in Figs. 9 and 10) and a pump inlet passage.160 past a ball 162 of the check valve 84 into an intermediate passage 164 and expulsion of the pressurized oil from the intermediate passage 164 into the high pressure passage 148 past a ball 166 of the check valve 92.
  • the pressurized oil is retained in the cavity 146 and further is supplied via the passage 148 to the actuator 110.
  • the passage 148 is in fluid communication with passages 170, 172 leading to the actuator receiving bore 140 and a valve bore 174, respectively.
  • a ball valve 176 is disposed within the valve bore 174.
  • the solenoid control valve 106 is disposed adjacent the ball valve 176 and includes a solenoid winding shown schematically at 180, an armature 182 adjacent the solenoid winding 180 and in magnetic circuit therewith and a load adapter 184 secured to the armature 182 by a screw 186.
  • the armature 182 is movable in a recess defined in part by the solenoid winding 180, an armature spacer 185 and a further spacer 187.
  • the solenoid winding 180 is energizable by the ECM 72, as noted in greater detail hereinafter, to move the armature 182 and the load adapter 184 against the force exerted by a return spring illustrated schematically at 188 and disposed in a recess 189 located in a solenoid body 191.
  • the ball valve includes a rear seat 190 having a passage 192 therein in fluid communication with the passage 172 and a sealing surface 194.
  • a front seat 196 is spaced from the rear seat 190 and includes a passage 198 leading to a sealing surface 200.
  • a ball 202 resides in the passage 198 between the sealing surfaces 194 and 200.
  • the passage 198 comprises a counterbore having a portion 201 which has been cross-cut by a keyway cutter to provide an oil flow passage to and from the ball area.
  • a passage 204 extends from a bore 206 containing the front seat 196 to an upper portion 208 of the receiving bore 140.
  • the receiving bore 140 further includes an intermediate portion 210 which closely receives a master fluid control device in the form of a valve spool 212 having a seal 214 which seals against the walls of the intermediate portion 210.
  • the seal 214 is commercially available and is of two-part construction including a carbon fiber loaded teflon ring backed up and pressure loaded by an O-ring.
  • the valve spool 212 further includes an enlarged head 216 which resides within a recess 218 of a lash stop adjuster 220..
  • the lash stop adjuster 220 includes external threads which are engaged by a threaded nut 222 which, together with a washer 224, are used to adjust the axial position of the lash stop adjuster 220.
  • the washer 224 is a commercially available composite rubber and metal washer which not only loads the adjuster 220 to lock the adjustment, but also seals the top of the actuator 110 and prevents oil leakage past the nut 222.
  • a slave fluid control device in the form of a piston 226 includes a central bore 228, seen in Figs. 17-19, which receives a lower end of the spool 212.
  • a spring 230 is placed in compression between a snap ring 232 carried in a groove in the spool 212 and an upper face of the piston 226.
  • a return spring, shown schematically at 234, is placed in compression between a lower face of the piston 226 and a washer 236 placed in the bottom of a recess defined in part by an end cap 238.
  • An actuator pin 240 is press- fitted within a lower portion of the central bore 228 so that the piston 226 and the actuator pin 240 move together.
  • the actuator pin 240 extends outwardly through a bore 242 in the end cap 238 and an O-ring 244 prevents the escape of oil through the bore 242.
  • a swivel foot 246 is pivotally secured to an end of the actuator pin 240.
  • the end cap 238 is threaded within a threaded portion 247 of the receiving bore 140 and an O-ring 248 provides a seal against leakage of oil.
  • an oil return passage 250 extends between a lower recess portion 252, defined by the end cap 238, and the piston 226 and the inlet passage 160 just upstream of the ball valve 84.
  • an oil passage 254 is disposed between the lower recess portion 252 and a space 256 between the valve spool 212 and the actuator pin 240 to prevent hydraulic lock between these two components.
  • Figs. 18 and 19 are composite sectional views illustrating the operation of the present invention in detail.
  • oil is supplied to the inlet passage 160 (seen in Figs. 9 and 13).
  • the oil flows at supply pressure past the check valve 84 into the passage 149 and the bore 150, causing the piston 152 and the connecting rod 154 to move downwardly into contact with the fuel injector rocker arm against the force of the spring 157.
  • Reciprocation of the connecting rod 154 by the fuel injector rocker arm 156 causes the oil to be pressurized and delivered to the passage 148.
  • the pressurized oil is thus delivered through the passage 172 and the passage 192 in the rear seat 190, as seen in Fig. 18.
  • the ECM 72 When the ECM 72 commands opening of the exhaust valves 40 of a cylinder 34, the ECM 72 energizes the solenoid winding 180, causing the armature 182 and the load adapter 184 to move to the right as seen in Fig. 18 against the force of the return spring 188. Such movement permits the ball 202 to also move to the right into engagement with the sealing surface 200 (Fig. 16) under the influence of the pressurized oil in the passage 192, thereby permitting the pressurized oil to pass in the space between the ball 202 and the sealing surface 194.
  • the pressurized oil flows through the passage 198 and the bore 206 into the passage 204 and the upper portion 208 of the receiving bore 140.
  • the high fluid pressure on the top of the valve spool 212 causes it to move downwardly.
  • the spring rate of the spring 230 is selected to be substantially higher than the spring rate of the return spring 234, and hence movement of the valve spool 212 downwardly tends to cause the piston 226 to also move downwardly. Such movement continues until the swivel foot takes up the lash and contacts the exhaust rocker arm 55. At this point, further travel of the piston 226 is temporarily prevented owing to the cylinder compression pressures on the exhaust valves 40. However, the high fluid pressure exerted on the top of the valve spool 212 is sufficient to continue moving the valve spool 212 downwardly against the force of the spring 230. Eventually, the relative movement between the valve spool 212 and the piston 226 causes an outer high pressure annulus 258 and a high pressure passage 260 (Figs.
  • valve spool 212 travels with the piston 226 in a downward direction until the enlarged head 216 of the valve spool 212 contacts a lower portion 270 of the lash stop adjuster 220. At this point, further travel of the valve spool 212 in the downward direction is prevented while the piston 226 continues to move downwardly. As seen in Fig.
  • the inner high pressure annulus 264 is eventually covered by the piston 226 and the low pressure annulus 266 is uncovered.
  • the low pressure annulus 266 is coupled by a passage 268 (Figs. 15, 18 and 19) to the lower recess portion 252 which, as noted previously, is coupled by the oil return passage 250 to the pump inlet 160.
  • the piston passage 262 and the upper face of the piston 226 are placed in fluid communication with low pressure oil. High pressure oil is vented from the cavity above the piston 226 and the exhaust valves 40 stop in the open position.
  • the piston 226 slowly oscillates between a fir ⁇ t position, at which the inner high pressure annulus 264 is uncovered, and a second position, at which the low pressure annulus 266 is uncovered, to vent oil as necessary to maintain the exhaust valves 40 in the open position as the cylinder 34 blows down.
  • the ECM 72 provides drive current according to a predetermined schedule to provide good coil life and low power consumption.
  • the ECM 72 terminates current flow in the solenoid winding 180.
  • the return spring 188 then moves the load adapter 184 to the left as seen in Figs. 18 and 19 so that the ball 202 is forced against the sealing surface 194 of the rear seat 190.
  • the high pressure fluid above the valve spool 212 flows back through the passage 204, the bore 206, a gap 274 between the load adapter 184 and the front seat 196 and a passage 276 to the oil sump.
  • the valve spool 212 is moved upwardly under the influence of the spring 230.
  • valve spool 212 moves upwardly, the low pressure annulus 266 is uncovered and the high pressure annulus 258 is covered by the piston 226, thereby causing the high pressure oil above the piston 226 to be vented.
  • the return spring 234 and the exhaust valve springs 267 force the piston 226 upwardly and the exhaust valves 40 close.
  • the closing velocity is controlled by the flow rate past the ball 202 into the passage 276.
  • the valve spool 212 eventually seats against an upper surface 280 of the lash stop adjuster 220 and the piston 226 returns to the original position as a result of venting of oil through the inner high pressure annulus 264 and the low pressure annulus 266 such that the passage 268 is in fluid communication with the latter.
  • the stopping position of the piston 226 is dependent upon the spring rates of the springs 230, 234. Oil remaining in the lower recess portion 252 is returned to the pump inlet 160 via the oil return passage 250.
  • the ECM 72 closes the solenoid valve 74 and rapidly cycles the solenoid control valve 106 (and the other solenoid control valves) a predetermined number of cycles to vent off the stored high pressure oil to sump.
  • Fig. 20 and 21 illustrate output and driver circuits of the ECM 72 as well as the wiring interconnections between the ECM 72 and a plurality of electronically controlled unit fuel injectors 300a- 300f, which are individually operated to control the flow of fuel into the engine cylinders 34, and the solenoid control valves of the present invention, here illustrated as including the solenoid control valves 106, 108 and additional solenoid valves 301a-301d.
  • the number of solenoid control valves would vary from that shown in Fig. 20 in dependence upon the number of cylinders to be used in engine braking.
  • the ECM 72 includes six solenoid drivers 302a-302f, each of which is coupled to a first terminal of and associated with one of the injectors 300a-300f and one of the solenoid control valves 106, 108 and 301a-301d, respectively.
  • Four current control circuits 304, 306, 308 and 310 are also included in the ECM 72.
  • the current control circuit 304 is coupled by diodes D1-D3 to second terminals of the unit injectors 300a-300c, respectively, while the current control circuit 306 is coupled by diodes D4-D6 to second terminals of the unit injectors 300d-300f, respectively.
  • the current control circuit 308 is coupled by diodes .
  • a solenoid driver 312 is coupled to the solenoid 74.
  • the ECM 72 need only actuate the appropriate driver 302a-302f and the appropriate current control circuit 304-310.
  • the driver 302a is operated as is the current control circuit 304 so that a current path is established therethrough.
  • the solenoid control valve 3Old is to be actuated, the driver 302f and the current control circuit 310 are operated to establish a current path through the control valve 3Old.
  • the solenoid driver 312 is operated to deliver current to the solenoid 74, except when the solenoid control valve 106 is rapidly cycled as noted above.
  • the diodes D1-D12 permit multiplexing of the current control circuits 304-310; i.e., the current control circuits 304-310 determine whether an associated injector or brake control is operating. Also, the current versus time wave shapes for the injectors and/or solenoid control valves are controlled by these circuits.
  • Fig. 21 illustrates the balance of the ECM
  • the ECM 72 in greater detail, and, in particular, circuits for commanding proper operation of the drivers 302a-302f and the current control circuits 304, 306, 308 and 310.
  • the ECM 72 is responsive to the output of a select switch 330, a cam wheel 332 and a sensor 334 and a drive shaft gear 336 and a sensor 338.
  • the ECM 72 develops drive signals on lines 340a-340j which are provided to the drivers 302a-302f and to the current control circuits 304, 306, 308 and 310, respectively, to properly energize the windings of the solenoid control valves 106, 108 and 301a-301d.
  • a signal is developed on a line 341 which is supplied to the solenoid driver 312 to operate same.
  • the select switch 330 may be manipulated by an operator to select a desired magnitude of braking, for example, in a range between zero and 100% braking.
  • the output of the select switch 330 is passed to a high wins circuit 342 in the ECM 72, which in turn provides an output to a braking control module 344 which is selectively enabled by a block 345 when engine braking is to occur, as described in greater detail hereinafter.
  • the braking control module 344 further receives an engine position signal developed on a line 346 by the cam wheel 332 and the sensor 334.
  • the cam wheel is driven by the engine camshaft 46 (which is in turn driven by the crankshaft 42 as noted above) and includes a plurality of teeth 348 of magnetic material, three of which are shown in Fig. 21, and which pass in proximity to the sensor 334 as the cam wheel 332 rotates.
  • the sensor 334 which may be a Hall effect device, develops a pulse type signal on the line 346 in response to passage of the teeth 348 past the sensor 334.
  • the signal on the line 346 is also provided to a cylinder select circuit 350 and a differentiator 352.
  • the differentiator 352 converts the position signal on the line 346 into an engine speed signal which, together with the cylinder select circuit 350 and the signal developed on the line 346, instruct the braking control module 344, when enabled, to provide control signals on the lines 340a-340f with the proper timing. Further, when the braking control module 344 is enabled, a signal is developed on the line 341 to activate the solenoid drive 312 and the solenoid 74.
  • the sensor 338 detects the passage of teeth on the gear 336 and develops a vehicle speed signal on a line 354 which is provided to a noninverting input of a summer 356. An inverting input of the summer 356 receives a signal on a line 358 representing a desired speed for the vehicle.
  • the signal on the line 358 may be developed by a cruise control or any other speed setting device.
  • the resulting error signal developed by the summer 356 is provided to the high wins circuit 342 over a line 360.
  • the high wins circuit 342 provides the signal developed by the select switch 330 or the error signal on the line 360 to the braking control module 344 as a signal %BRAKING on a line 361 in dependence upon which signal has the higher magnitude. If the error signal developed by the summer 356 is negative in sign and the signal developed by the select switch 330 is at a magnitude commanding no (or 0%) braking, the high wins circuit 342 instructs the braking control module 344 to terminate engine braking.
  • a boost control module 362 is responsive to a signal, called BOOST, developed by a sensor 364 on a line 365 which detects the magnitude of intake manifold air pressure of a turbocharger 366 of the engine 30.
  • the turbocharger 366 has a variable blade geometry which allows boost level to be controlled by the boost control module 362.
  • the module 362 receives a limiter signal on a line 368 developed by the braking control module 344 which allows for as much boost as the turbocharger 366 can develop under the current engine conditions but prevents the boost control module from increasing boost to a level which would cause damage to engine components.
  • the braking control module includes a lookup table or map 370 which is addressed by the signals %BRAKING and BOOST on the lines 361 and 365, respectively, and provides output signals DEG. ON and DEG. OFF to the control of Fig. 23.
  • Fig. 22 illustrates in three dimensional form the contents of the map 370 including the output signals DEG. ON and DEG. OFF as a function of the addressing signals %BRAKING and BOOST.
  • the signals DEG. ON and DEG. OFF indicate the timing of solenoid control valve actuation and deactuation, respectively, in degrees after a cam marker signal is produced by the cam wheel 332 and the sensor 334.
  • the cam wheel 332 includes 24 teeth, 21 of which are identical to one another and each of which occupies 80% of a tooth pitch with a 20% gap. Two of the remaining three teeth are adjacent to one another (i.e., consecutive) while the third is spaced therefrom and each occupies 50% of a tooth pitch with a 50% gap.
  • the ECM 72 detects these non-uniformities to determine when cylinder number 1 of the engine 30 reaches TDC between compression and power strokes as well as engine rotation direction.
  • the signal DEG ON is provided to a computational block 372 which is responsive to the engine speed signal developed by the block 352 of Fig. 21 and which develops a signal representing the time after a reference point or marker on the cam wheel 332 passes the sensor 334 at which a signal on one of the lines 340a-340f is to be switched to a high state.
  • a computational block 374 is responsive to the engine speed signal developed by the block 352 and develops a signal representing the time after the reference point passes the sensor 334 at which the signal on the same line 340a-340f is to be switched to an off state.
  • the signals from the blocks 372, 374 are supplied to delay blocks 376, 378, respectively, which develop on and off signals for a solenoid driver block 380 in dependence upon the marker developed by the cam wheel 332 and the sensor 334 and in dependence upon the particular cylinder which is to be employed next in braking.
  • the signal developed by the delay block 376 comprises a narrow pulse having a leading edge which causes the solenoid driver block 380 to develop an output signal having a transition from a low state to a high state whereas the timer block 378 develops a narrow pulse having a leading edge which causes the output signal developed by the solenoid driver circuit 380 to switch from a high state to a low state.
  • the signal developed by solenoid driver circuit 380 is routed to the appropriate output line 340a-340f by a cylinder select switch 382 which is responsive to the cylinder select signal developed by the block 350 of Fig. 21.
  • the braking control module 344 is enabled by the block 345 in dependence upon certain sensed conditions as detected by sensors/switches 383.
  • the sensors/switches include a clutch switch 383a which detects when a clutch of the vehicle is engaged by an operator (i.e., when the vehicle wheels are disengaged from the vehicle engine) , a throttle position switch 383b which detects when a throttle pedal is depressed, an engine speed sensor 383c which detects the speed of the engine, a service brake switch 383d which develops a signal representing whether the service brake pedal of the vehicle is depressed, a cruise control on/off switch 383e and a brake on/off switch 383f.
  • a clutch switch 383a which detects when a clutch of the vehicle is engaged by an operator (i.e., when the vehicle wheels are disengaged from the vehicle engine)
  • a throttle position switch 383b which detects when a throttle pedal is depressed
  • an engine speed sensor 383c which detects the speed of the engine
  • the output of the circuit 352 may be supplied in view of the signal developed by the sensor 383c, in which case the sensor 383c may be omitted.
  • the braking control module 344 is enabled when the on/off switch 383f is on, the engine speed is above a particular level, for example 950 rpm, the driver's foot is off the throttle and clutch and the cruise control is off.
  • the braking control module 344 is also enabled when the on/off switch 383f is on, engine speed is above the certain level, the driver's foot is off the throttle and clutch, the cruise control is on and the driver depresses the service brake.
  • a "coast" mode may be employed wherein engine braking is engaged only while the driver presses the service brake, in which case, the braking control module 344 is disabled when the driver's foot is removed from the service brake.
  • the braking control module 344 is enabled by the block 345 once the driver presses the service brake and remains enabled until another input, such as depressing the throttle or selecting 0% braking by means of the switch 330, is supplied.
  • the block 345 enables an injector control module 384 when the braking control module 344 is disabled, and vice versa.
  • the injector control module 384 supplies signals over the lines 340a-340f as well as over lines 340g and 34Oh to the current control circuits 304 and 306 of Fig. 20 so that fuel injection is accomplished.
  • the signal developed by the solenoid driver circuit 380 is also provided to a current control logic block 386 which in turn supplies signals on lines 340i, 340j of appropriate waveshape and synchronization with the signals on the lines 340a-340f to the blocks 308 and 310 of Fig. 20. Programming for effecting this operation is completely within the abilities of one of ordinary skill in the art and will not be described in detail herein.
  • any or all of the elements represented in Figs. 21 and 23 may be implemented by software, hardware or by a combination of the two.
  • the foregoing system permits a wide degree of flexibility in setting both the timing and duration of exhaust valve opening. This flexibility results in an improvement in the maximum braking achievable within the structural limits of the engine. Also, braking smoothness is improved inasmuch as all of the cylinders of the engine can be utilized to provide braking. In addition, smooth modulation of braking power from zero to maximum can be achieved owing to the ability to precisely control timing and duration of exhaust valve opening at all engine speeds. Still further, in conjunction with a cruise control as noted above, smooth speed control during downhill conditions can be achieved.
  • a pressure-limited bulk modulus accumulator permits setting of a maximum accumulator pressure which prevents damage to engine components. Specifically, with the accumulator maximum pressure properly set, the maximum force applied to the exhaust valves can never exceed a preset limit regardless of the time of the valve opening signal. If the valve opening signal is developed at a time where cylinder pressures are extremely high, the exhaust valves simply will not open rather than causing a structural failure of the system.
  • a cruise control and/or a turbocharger control in the circuitry of Fig. 21 is optional.
  • the circuitry of Fig. 21 may be modified in a manner evident to one of ordinary skill in the art to implement use of a traction control therewith whereby braking horsepower is modulated to prevent wheel slip, if desired.
  • the integration of the injector and braking wiring and connections to the ECM permits multiple use of drivers, control logic and wiring and thus involves little additional cost to achieve a robust and precise brake control system.
  • the control of the present invention provides sufficient force to open multiple exhaust valves against in-cylinder compression pressures high enough to achieve desired engine braking power levels and allows adjustment of the free travel or lash between the actuator and the exhaust valve rocker arm.
  • the total travel of the actuator is controlled to prevent valve-to-piston interference and to prevent high impact loads in the actuator.
  • the opening and closing velocities of the exhaust valves can be controlled.
  • engine braking can be accomplished by opening the exhaust valves in some or all of the engine cylinders at a point just prior to TDC.
  • the exhaust valve(s) associated with each cylinder may also be opened at a point near bottom dead center (BDC) so that cylinder pressure is boosted. This increased cylinder pressure causes a larger braking force to be developed owing to the increased retarding effect on the engine crankshaft.
  • a further exhaust valve opening event is added near BDC, as represented by the curve 394.
  • This event which is added by suitable programming of the ECM 72 in a manner evident to one of ordinary skill in the art, permits a pressure spike arising in the exhaust manifold of the engine and represented by the portion 396 of an exhaust manifold pressure curve 398, to boost the pressure in the cylinder just prior to compression. This boosting results in a pressure increase over the cylinder pressure represented by the curve 400 of Fig. 25.
  • Fig. 26 illustrates an alternative embodiment of the accumulator 100 which may take the place of the bulk oil modulus accumulator illustrated in Fig. 12.
  • the accumulator of Fig. 26 is of the mechanical type and includes an expandable accumulator chamber 412 including a fixed cylindrical center portion 414 and a movable outer portion 416 which fits closely around the center portion 414 and is concentric therewith.
  • a pair of springs shown schematically at 418 and 419, are located between and bear against a shouldered portion 420 of the outer portion 416 and a spacer 421 disposed on the engine head and bias the outer portion 416 upwardly as seen in Fig. 26.
  • the center portion 414 includes a central bore 422 which is in fluid communication via conduits 424, 426 and 428 with the pump unit 88.
  • the pump unit 88 pressurizes oil which is supplied through the conduits 424-428 to the central bore 422 of the center portion 414.
  • a threaded plug 430 is threaded into a lower portion of the outer portion 416 to provide a seal against escape of oil and hence the pressurized oil collects in a recess 432 just above the threaded plug 430.
  • the pressurized oil forces the outer portion 416 downwardly against the force exerted by the springs 418 and 419 so that the volume of the recess 432 increases. Overfilling of the recess 432 is prevented by vent holes 434, 436 which, as oil is introduced into the recess 432, are eventually uncovered and cause oil in the recess 432 to be vented.
  • the actuator 440 which may be used in place of the actuator 110 or 112 illustrated in Fig. 5.
  • the actuator 440 includes an outer sleeve 442 which is slip-fit into a bore 444 in the main body 132 at an adjustable axial position and is sealed by the upper and lower 0-rings 445a, 445b. If desired, a close fit may be provided between the outer sleeve 442 and the bore 444, in which case the O-rings 445a, 445b may be omitted.
  • An upper portion 446 is threaded into a bore 448 in the main body 132 and a washer 450 is placed over a threaded end 451.
  • a nut 452 is threaded over the threaded end 451 and assists in maintaining the actuator 440 within the main body 132 at the desired axial position.
  • a threaded plug 454 is received within a threaded bore 456 at an adjustable axial position within the upper portion 446.
  • a slave fluid control device in the form of a piston 458 having a central bore 460 therethrough and an extended lower portion 462 that carries a socketed swivel foot 464 which is retained within a hollow end of the lower portion 462 by an O-ring retainer 465.
  • the swivel foot 464 is adapted to engage an exhaust valve rocker arm (not shown in Fig. 27) .
  • the lower portion 462 extends beyond an open end 466 of the outer sleeve 442.
  • a spring illustrated schematically at 467, is placed in compression between a washer 468 and retaining ring 469 and a shoulder 470 of the piston 458.
  • First and second sliding seals 472, 474 provide sealing between the piston 458 and the outer sleeve 442. If desired, the seals 472, 474 may be omitted if a tight sliding fit is provided between the piston 458 and the other sleeve 442.
  • a master fluid control device in the form of a valve spool 476 is disposed within the central bore 460.
  • a spring 477 is disposed between the swivel foot 464 and a shoulder 478 of the valve spool 476 and biases the valve spool 476 upwardly.
  • a further sliding seal 480 is disposed between the valve spool 476 and the outer sleeve 442.
  • the operation of the actuator 440 is identical to the actuator 110 or 112 described above in the way that the piston 458 and the valve spool 476 interact to control the lift and regulate the force provided by the piston 458.
  • the piston 458 has angled bores (not seen in the section of Fig. 27) and an annular groove 482 which moves into and out of engagement with a high pressure annulus 484 and a low pressure volume 486 which is connected by a passage
  • the amount of travel of the spool 476 is determined by the axial position of the plug 454 in the threaded bore 456.
  • the lash or space between the swivel foot 464 and the exhaust rocker arm can be adjusted by adjusting the axial position of the upper portion 446 of the actuator 440 in the threaded bore 448.
  • the nut 452 may then be tightened to prevent further axial displacement of the actuator 440.
  • Fig. 28 there is illustrated a further actuator 490 according to the present invention.
  • the actuator 490 is similar to the actuator 440 and operates in the same fashion, and hence only the differences between the two will be discussed in detail herein.
  • the actuator 490 includes an actuator body 492 which is tightly slip-fitted within a bore 494 of the main body 132.
  • a slave fluid control device in the form of a piston 496 includes an extended lower portion 498 having a threaded bore 499.
  • a cylindrical member 500 is threaded into the threaded bore 499 at an adjustable position and is retained at such position by any suitable means, such as a nylon patch or a known locking compound.
  • the cylindrical member 500 includes a socketed swivel foot 501 which is retained within a hollow end of the cylindrical member 500 by a retaining O-ring 503a and which is similar to the swivel foot 464 in that the foot 501 is capable of engaging a rocker arm which is in turn coupled to exhaust valves of a cylinder.
  • the lower portion 498 extends through an end cap 502 threaded into the bore 494 and an O-ring 503b prevents leakage of oil between the end cap 502 and the lower portion 498.
  • a set of belleville springs 504 or, alternatively, a wave spring, is placed in compression between the piston 496 and the end cap 502.
  • the cap 502 further holds the actuator body 492 against an upper surface of the bore 494.
  • a pair of optional sliding seals 505a, 505b may be provided between the piston 496 and the actuator body 492, if necessary or desirable, or close fit machined surfaces of the piston 496 and the 492 may be provided, in which case the seals 505a, 505b would not be necessary.
  • a master fluid control device in the form of a valve spool 506 is closely received within a central bore 507 of the piston 496.
  • the valve spool 506 includes an enlarged head 508 disposed within a shouldered recess 509 in the main body 492.
  • a sliding seal 510 is disposed between the valve spool 506 and the actuator body 492 and a spring 511 is placed in compression between the cylindrical member 500 and the valve spool 506.
  • a passage extends between the space containing the belleville springs 504 to the pump inlet 160 of Fig. 9.
  • the piston 496 and the valve spool 506 include the passages and annular grooves which cause the actuator 490 to operate in the fashion described above.
  • the gap between an upper face 512 of the enlarged head 508 and a further face 514 formed in the main body 132 determines the amount of lift of the valve spool 506.
  • the lash adjustment is effected by threading the cylindrical portion 500 into the threaded bore 499 to a desired position.
  • Fig. 29 illustrates yet another actuator 526 according to the present invention wherein elements common to Figs. 28 and 29 are assigned like reference numerals.
  • a piston 496 includes a central bore 507 which receives a valve spool 506.
  • a cylindrical member 500 is threaded into an extended lower portion 498 of the piston 496 at an adjustable position and a socketed swivel foot 501 is carried on the end of the cylindrical portion 500.
  • the piston 496 is received directly within a bore 528 in the main body 132 without the use of the actuator body 492.
  • Optional sliding seals 529a, 529b similar to the seals 505a, 505b, respectively, may be provided to seal between the piston 496 and the bore 528.
  • a threaded end cap 530 is threaded into the bore 528 and carries an O-ring 532 which prevents leakage of oil therepast.
  • a coil-type spring 533 is substituted for the belleville springs 504 and is placed in compression between the end cap 530 and a recess 534 in the piston 496.
  • a threaded plug 535 is threaded into a threaded bore 536 in the main body 132 at an adjustable position to provide an adjustable amount of lift of the valve spool 506.
  • a sliding seal 537 similar to the seal 510, provides a seal between the valve spool 506 and the bore 528.
  • the embodiment of Fig. 29 is otherwise identical to the embodiment of Fig. 28 and operates in the same fashion.
  • the ball valve 176 illustrated in Figs. 15 and 16 may be replaced by any other suitable type of valve.
  • a poppet valve 550 may be substituted for the ball valve 176.
  • the poppet valve 550 controls the passage of pressurized oil between the passage 172 and the passage 204.
  • the poppet valve includes a valve member 552 which is disposed within and guided by a valve bore 554.
  • the valve member 552 further includes a head 556 which is threaded to accept the threads of a screw 558 identical to the screw 186 of Figs. 15-19.
  • the screw 558 includes a head which is received within an armature 560.
  • a rear stop 562 is spaced from a solenoid winding, illustrated schematically at 564, by an armature spacer 566 and is located adjacent a poppet spacer 568.
  • the valve member 552 further includes an intermediate portion 570 which is disposed within a stepped recess 572 in the poppet spacer 568.
  • the intermediate portion 570 includes a circumferential flange 574 having a sealing surface 576 which is biased into engagement with a sealing seat 578 by a spring 580 placed in compression between the flange 574 and a face 582 of the rear stop 562.
  • the poppet valve 550 is shown in the on or energized condition wherein the armature 560 is pulled toward the solenoid winding 564 owing to the current flowing therein. This displacement of the armature 560 causes the valve member 552 to be similarly displaced, thereby causing the sealing surface 576 to be spaced from the sealing seat 578. This spacing permits fluid communication between the passages 172 and 204.
  • a shoulder 590 of the intermediate portion 570 is forced against the face 582 of the rear stop to prevent fluid communication between the passages 172 and 204 on the one hand and a drain passage 592 on the other hand.
  • the spring 580 urges the valve member 552 to the left as seen in Fig. 30 so that the sealing surface 576 is forced against the sealing seat 578, thereby preventing fluid communication between the passages 172 and 204.
  • the shoulder 590 is spaced from the face 582 of the rear stop 562, thereby permitting fluid communication between the passage 204 and the drain passage 592.

Abstract

A braking control for an engine permits the timing and duration of exhaust valve opening to be accurately determined independent of engine events so that braking power can be precisely controlled.

Description

PR script, i nn
ENGTN COMPWKSSTON RPA TNG APPARATUS ANf) M THOn
Tpπhn -i f-a l *Pi o1 H The present invention relates generally to engine retarding systems and methods and, more particularly, to an apparatus and method for engine compression braking using electronically controlled hydraulic actuation.
Background Art
Engine brakes or retarders are used to assist and supplement wheel brakes in slowing heavy vehicles, such as tractor-trailers. Engine brakes are desirable because they help alleviate wheel brake overheating. As vehicle design and technology have advanced, the hauling capacity of tractor-trailers has increased, while at the same time rolling resistance and wind resistance have decreased. Thus, there is a need for advanced engine braking systems in todays heavy vehicles.
Problems with existing engine braking systems include high noise levels and a lack of smooth operation at some braking levels resulting from the use of less than all of the engine cylinders in a compression braking scheme. Also, existing systems are not readily adaptable to differing road and vehicle conditions. Still further, existing systems are complex and expensive.
Known engine compression brakes convert an internal combustion engine from a power generating unit into a power consuming air compressor.
U.S. Patent No. 3,220,392 issued to Cummins on 30 November 1965, discloses an engine braking system in which an exhaust valve located in a cylinder is opened when the piston in the cylinder nears the top dead center (TDC) position on the compression stroke. An actuator includes a master piston, driven by a cam and pushrod, which in turn drives a slave piston to open the exhaust valve during engine braking. The braking that can be accomplished by the Cummins device is limited because the timing and duration of the opening of the exhaust valve is dictated by the geometry of the cam which drives the master piston and hence these parameters cannot be independently controlled.
In conjunction with the increasingly widespread use of electronic controls in engine systems, braking systems have been developed which are electronically controlled by a central engine control unit which optimizes the performance of the braking system.
U.S. Patent No. 5,012,778 issued to Pitzi on 7 May 1991, discloses an engine braking system which includes a solenoid actuated servo valve hydraulically linked to an exhaust valve actuator. Hydraulic pressure (on the order of 3000 psi) is supplied by a high pressure hydraulic pump which supplies a high pressure plenum. A pressure regulator disposed between the high pressure hydraulic pump and the high pressure plenum maintains operating hydraulic pressure below a desired limit.
The servo valve disclosed in Pitzi '778 includes a high pressure source duct leading from the high pressure plenum, an actuator duct leading from the servo valve to the exhaust valve actuator and a drain duct. The servo valve has two operating positions. In a first or closed position, the high pressure duct is blocked and the actuator duct is in fluid communication with the drain duct. In this first position, pressure in the exhaust valve actuator is relieved through the drain duct to place the exhaust valve actuator in a rest position out of contact with the exhaust valve. In a second or open position, the drain duct is blocked and the high pressure duct is in fluid communication with the exhaust valve actuator.
The exhaust valve actuator disclosed in the Pitzi '778 patent comprises a piston which, when subjected to sufficient hydraulic pressure, is driven into contact with a contact plate attached to an exhaust valve stem, thereby opening the exhaust valve. An electronic controller activates the solenoid of the servo valve. A group of switches are connected in series to the controller and the controller also receives inputs from a crankshaft position sensor and an engine speed sensor.
U.S. Patent No. 5,255,650 issued to Faletti et al. on 26 October 1993, and assigned to the assignee of the present application, discloses an electronic control system which is programmed to operate the intake valves, exhaust valves, and fuel injectors of an engine according to two predetermined logic patterns. According to a first logic pattern, the exhaust valves remain closed during each compression stroke. According to a second logic pattern, the exhaust valves are opened as the piston nears the TDC position during each compression stroke. The opening position, closing position, and the valve lift are all controlled independently of the position of the engine crankshaft.
U.S. Patent No. 4,572,114 issued to Sickler on 25 February 1986, discloses an electronically controlled engine braking system. A pushtube of the engine reciprocates a rocker arm and a master piston so that pressurized fluid is delivered and stored in a high pressure accumulator. For each engine cylinder, a three-way solenoid valve is operable by an electronic controller to selectively couple the accumulator to a slave bore having a slave piston disposed therein. The slave piston is responsive to the admittance of the pressurized fluid from the accumulator into the slave bore to move an exhaust valve crosshead and thereby open a pair of exhaust valves. The use of an electronic controller allows braking performance to be maximized independent of restraints resulting from mechanical limitations. Thus, the valve timing may be varied as a function of engine speed to optimize the retarding horsepower developed by the engine.
niseins re of the. Invention
A brake control according to the present invention provides selectable control over the timing and duration of exhaust valve opening to permit high braking levels to be achieved and infinitely variable selection of braking levels.
More particularly, a braking control for an engine having a combustion chamber and an exhaust port moveable between open and closed positions wherein the engine is operable to undergo engine events each of which occurs at a timing point includes electrohydraulic means for engaging the exhaust valve and control means. The control means is capable of timing movement of the exhaust valve to the open position selectably independent of the timing points to thereby permit selection of an adjustable braking magnitude. The control means includes means for storing actuation points and means for selecting actuation points from the storing means.
According to a further aspect of the present invention, a braking control for an engine having a combustion chamber and an exhaust valve movable between open and closed positions wherein the engine is operable to undergo engine events each of which occurs at a timing point includes an electrically- operable control valve and an actuator coupled between the control valve. The actuator is operable by the control valve to move the exhaust valve to an open position. An electronic engine control is coupled to the control valve for operating same to move the exhaust valve to the open position selectably independent of the timing points to thereby permit selection of an adjustable braking magnitude. The engine control includes a look-up table for storing actuation points, selection circuitry for selecting actuation points from the storing means and drive circuity for developing drive signals for the control valve.
Other features and advantages are inherent in the apparatus claimed and disclosed or will become apparent to those skilled in the art from the following detailed description in conjunction with the accompanying drawings.
Brief Description of the Drawings
Fig. 1 is a fragmentary isometric view of an internal combustion engine with portions removed to reveal detail therein and with which the braking control of the present invention may be used;
Fig. 2 comprises a sectional view of the engine of Fig. 1; Fig. 3 comprises a graph illustrating cylinder pressure as a function of crankshaft angle in braking and motoring modes of operation of an engine;
Fig. 4A comprises a graph illustrating braking power as a function of compression release timing of an engine;
Fig. 4B comprises a graph illustrating percent braking horsepower as a function of valve open duration; Fig. 5 comprises a combined block and schematic diagram of a braking control according to the present invention;
Fig. 6 comprises a combined block and schematic diagram of an alternative embodiment of the brake control of the present invention;
Fig. 7 comprises a perspective view of hydromechanical hardware for implementing the control of the present invention;
Fig. 8 comprises an end elevational view of the hardware of Fig. 7;
Fig. 9 comprises a plan view of the hardware of Fig. 7 with structures removed therefrom to the right of the section line 12-12 to more clearly illustrate the design thereof; Figs. 10 and 11 are front and rear elevational views, respectively, of the hardware of Fig. 9;
Figs. 12, 13, 14, 15 and 17 are sectional views taken generally along the lines 12-12, 13-13, 14-14, 15-15 and 17-17, respectively, of Fig. 9;
Fig. 16 is an enlarged fragmentary view of a portion of Fig. 15;
Figs. 18 and 19 are composite sectional views illustrating the operation of the actuator of Figs. 7-17; Fig. 20 is a block diagram illustrating output and driver circuits of an engine control module (ECM) , a plurality of unit injectors and a plurality of braking controls according to the present invention;
Fig. 21 comprises a block diagram of the balance of electrical hardware of the ECM;
Fig. 22 comprises a three-dimensional representation of a map relating solenoid control valve actuation and deactuation timing as a function of desired braking magnitude and turbocharger boost magnitude;
Fig. 23 comprises a block diagram of software executed by the ECM to implement the braking control module of Fig. 21;
Fig. 24 is a graph illustrating exhaust valve lift as a function of crankshaft angle;
Fig. 25 is a graph illustrating cylinder pressure and exhaust manifold pressure as a function of crankshaft angle;
Fig. 26 is a sectional view similar to Fig. 12 illustrating an alternative accumulator according to the present invention;
Figs. 27-29 are sectional views similar to Fig. 17 illustrating alternative actuators according to the present invention; and
Fig. 30 is a view similar to Fig. 16 illustrating a poppet valve which may be substituted for the valve of Figs. 15-19 according to an alternative embodiment of the present invention.
Best Mode for Carrying Out the Invention
Referring now to Fig. 1, an internal combustion engine 30, which may be of the four-cycle, compression ignition type, undergoes a series of engine events during operation thereof. In the preferred embodiment, the engine sequentially and repetitively undergoes intake, compression, combustion and exhaust cycles during operation. The engine 30 includes a block 32 within which is formed a plurality of combustion chambers or cylinders 34, each of which includes an associated piston 36 therein. Intake valves 38 and exhaust valves 40 are carried in a head 41 bolted to the block 32 and operated to control the admittance and expulsion of fuel and gases into and out of each cylinder 34. A crankshaft 42 is coupled to and rotated by the pistons 36 via connecting rods 44 and a camshaft 46 is coupled to and rotates with the crankshaft 42 in synchronism therewith. The camshaft 46 includes a plurality of cam lobes 48 (one of which is visible in Fig. 2) which are contacted by cam followers 50 (Fig. 2) carried by rocker arms 54, 55 which in turn bear against intake and exhaust valves 38, 40, respectively. In the engine 30 shown in Figs. 1 and 2, there is a pair of intake valves 38 and a pair of exhaust valves 40 per cylinder 34 wherein the valve 38 or 40 of each pair is interconnected by a valve bridge 39, 43, respectively. Each cylinder 34 may instead have a different number of associated intake and exhaust valves 38, 40, as necessary or desirable. The graphs of Figs. 3 and 4A illustrate cylinder pressure and braking horsepower, respectively, as a function of crankshaft angle relative to top dead center (TDC) . As seen in Fig. 3, during operation in a braking mode, the exhaust valves 40 of each cylinder 34 are opened at a time tx prior to TDC so that the work expended in compressing the gases within the cylinder 34 is not recovered by the crankshaft 42. The resulting effective braking by the engine is proportional to the difference between the area under the curve 62 prior to TDC and the area under the curve 62 after TDC. This difference, and hence the effective braking, can be changed by changing the time t2 at which the exhaust valves 40 are opened during the compression stroke. This relationship is illustrated by the graph of Fig. 4A.
As seen in Fig. 4B, the duration of time the exhaust valves are maintained in an open state also has an effect upon the maximum braking horsepower which can be achieved.
With reference now to Fig. 5, a two-cylinder portion 70 of a brake control according to the present invention is illustrated. The portion 70 of the brake control illustrated in Fig. 5 is operated by an electronic control module (ECM) 72 to open the exhaust 40 of two cylinders 34 with a selectable timing and duration of exhaust valve opening. For a six cylinder engine, up to three of the portions 70 in Fig. 5 could be connected to the ECM 72 so that engine braking is accomplished on a cylinder-by-cylinder basis. Alternatively, fewer than three portions 70 could be used and/or operated so that braking is accomplished by less than all of the cylinders and pistons. Also, it should be noted that the portion 70 can be modified to operate any other number of exhaust valves for any other number of cylinders, as desired. The ECM 72 operates a solenoid control valve 74 to couple a conduit 76 to a conduit 78. The conduit 76 receives engine oil at supply pressure, and hence operating the solenoid control valve 74 permits engine oil to be delivered to conduits 80, 82 which are in fluid communication with check valves 84, 86, respectively. The engine oil under pressure causes pistons of a pair of reciprocating pumps 88, 90 to extend and contact drive sockets of injector rocker arms (described and shown below) . The rocker arms cause the pistons to reciprocate and cause oil to be supplied under pressure through check valves, 92, 94 and conduits 96, 98 to an accumulator 100. As such pumping is occurring, oil continuously flows through the conduits 80 and 82 to refill the pumps 88, 90.
In the preferred embodiment, the accumulator does not include a movable member, such as a piston or bladder, although such a movable member could be included therein, if desired. Further, the accumulator includes a pressure control valve 104 which vents engine oil to sump when a predetermined pressure is exceeded, for example 6,000 p.s.i. The conduit 96 and accumulator 100 are further coupled to a pair of solenoid control valves 106, 108 and a pair of servo-actuators 110, 112. The servo-actuators 110, 112 are coupled by conduits 114, 116 to the pumps 88, 90 via the check valves 84, 86, respectively. The solenoid control valves 106, 108 are further coupled by conduits 118, 120 to sump.
As noted in greater detail hereinafter, when operation in the braking mode is selected by an operator, the ECM 72 closes the solenoid control valve 74 and operates the solenoid control valves 106, 108 to cause the servo-actuators 110, 112 to contact valve bridges 43 and open associated exhaust valves 40 in associated cylinders 34 near the end of a compression stroke. It should be noted that the control of Fig. 5 may be modified such that a different number of cylinders is serviced by each accumulator. In fact, by providing an accumulator with sufficient capacity, all of the engine cylinders may be served thereby.
Fig. 6 illustrates an alternative embodiment of the present invention wherein elements common to Figs. 5 and 6 are assigned like reference numbers. In the embodiment of Fig. 6, the solenoid control valve 74, the check valves 84, 86, 92 and 94 and the pumps 88 and 90 are replaced by a high pressure pump 130 which is controlled by the ECM 72 to pressurize engine oil to a high level, for example, 6,000 p.s.i.
Figs. 7-17 illustrate mechanical hardware for implementing the control of Fig. 5. Referring first to Figs. 7-11, a main body 132 includes a bridging portion 134. Threaded studs 135 extend through the main body 132 and spacers 136 into the head 41 and nuts 137 are threaded onto the studs 135. In addition, four bolts 138 extend through the main body 132 into the head 41. The bolts 138 replace rocker arm shaft hold down bolts and not only serve to secure the main body 132 to the head 41, but also extend through and hold a rocker arm shaft 139 in position.
A pair of actuator receiving bores 140, 142 are formed in the bridging portion 134. The servo- actuator 110 is received within the actuator receiving bore 140 while the servo-actuator 112 (not shown in Figs. 7-17) is received within the receiving bore 142. Inasmuch as the actuators 110 and 112 are identical, only the actuator 110 will be described in greater detail hereinafter.
With specific reference to Figs. 12-14, a cavity 146, seen in Fig. 12, is formed within the bridging portion 134 and comprises the accumulator 100 described above. The cavity 146 is in fluid communication with a high pressure passage or manifold 148 which is in turn coupled by the check valve 92 and a passage 149 to a bore 150 forming a portion of the pump unit 88. A piston 152 is disposed within the bore 150 (the top of which is just visible in Fig. 13) and is coupled to a connecting rod 154 which is adapted to contact a fuel injector rocker arm 156, seen in Figs. 1 and 7. A spring 157 surrounds the connecting rod 154 and is disposed between a shoulder on the connecting rod 154 and a stop 158. With reference to Fig. 13, reciprocation of the fuel injector rocker arm 156 alternately introduces crankcase oil through an inlet fitting 159 (seen only in Figs. 9 and 10) and a pump inlet passage.160 past a ball 162 of the check valve 84 into an intermediate passage 164 and expulsion of the pressurized oil from the intermediate passage 164 into the high pressure passage 148 past a ball 166 of the check valve 92. The pressurized oil is retained in the cavity 146 and further is supplied via the passage 148 to the actuator 110.
Referring now to Figs. 15 and 16, the passage 148 is in fluid communication with passages 170, 172 leading to the actuator receiving bore 140 and a valve bore 174, respectively. A ball valve 176 is disposed within the valve bore 174. The solenoid control valve 106 is disposed adjacent the ball valve 176 and includes a solenoid winding shown schematically at 180, an armature 182 adjacent the solenoid winding 180 and in magnetic circuit therewith and a load adapter 184 secured to the armature 182 by a screw 186. The armature 182 is movable in a recess defined in part by the solenoid winding 180, an armature spacer 185 and a further spacer 187. The solenoid winding 180 is energizable by the ECM 72, as noted in greater detail hereinafter, to move the armature 182 and the load adapter 184 against the force exerted by a return spring illustrated schematically at 188 and disposed in a recess 189 located in a solenoid body 191. The ball valve includes a rear seat 190 having a passage 192 therein in fluid communication with the passage 172 and a sealing surface 194. A front seat 196 is spaced from the rear seat 190 and includes a passage 198 leading to a sealing surface 200. A ball 202 resides in the passage 198 between the sealing surfaces 194 and 200. The passage 198 comprises a counterbore having a portion 201 which has been cross-cut by a keyway cutter to provide an oil flow passage to and from the ball area.
As seen in phantom in Figs. 9 and 15, a passage 204 extends from a bore 206 containing the front seat 196 to an upper portion 208 of the receiving bore 140. As seen in Fig. 17, the receiving bore 140 further includes an intermediate portion 210 which closely receives a master fluid control device in the form of a valve spool 212 having a seal 214 which seals against the walls of the intermediate portion 210. The seal 214 is commercially available and is of two-part construction including a carbon fiber loaded teflon ring backed up and pressure loaded by an O-ring. The valve spool 212 further includes an enlarged head 216 which resides within a recess 218 of a lash stop adjuster 220.. The lash stop adjuster 220 includes external threads which are engaged by a threaded nut 222 which, together with a washer 224, are used to adjust the axial position of the lash stop adjuster 220. The washer 224 is a commercially available composite rubber and metal washer which not only loads the adjuster 220 to lock the adjustment, but also seals the top of the actuator 110 and prevents oil leakage past the nut 222.
A slave fluid control device in the form of a piston 226 includes a central bore 228, seen in Figs. 17-19, which receives a lower end of the spool 212. A spring 230 is placed in compression between a snap ring 232 carried in a groove in the spool 212 and an upper face of the piston 226. A return spring, shown schematically at 234, is placed in compression between a lower face of the piston 226 and a washer 236 placed in the bottom of a recess defined in part by an end cap 238. An actuator pin 240 is press- fitted within a lower portion of the central bore 228 so that the piston 226 and the actuator pin 240 move together. The actuator pin 240 extends outwardly through a bore 242 in the end cap 238 and an O-ring 244 prevents the escape of oil through the bore 242. In addition, a swivel foot 246 is pivotally secured to an end of the actuator pin 240. The end cap 238 is threaded within a threaded portion 247 of the receiving bore 140 and an O-ring 248 provides a seal against leakage of oil.
As seen in Fig. 9, an oil return passage 250 extends between a lower recess portion 252, defined by the end cap 238, and the piston 226 and the inlet passage 160 just upstream of the ball valve 84.
In addition to the foregoing, as seen in Figs. 15, 18 and 19, an oil passage 254 is disposed between the lower recess portion 252 and a space 256 between the valve spool 212 and the actuator pin 240 to prevent hydraulic lock between these two components.
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Figs. 18 and 19 are composite sectional views illustrating the operation of the present invention in detail. When braking is commanded by an operator and the solenoid 74 is actuated by the ECM 72, oil is supplied to the inlet passage 160 (seen in Figs. 9 and 13). As seen in Fig. 13, the oil flows at supply pressure past the check valve 84 into the passage 149 and the bore 150, causing the piston 152 and the connecting rod 154 to move downwardly into contact with the fuel injector rocker arm against the force of the spring 157. Reciprocation of the connecting rod 154 by the fuel injector rocker arm 156 causes the oil to be pressurized and delivered to the passage 148. The pressurized oil is thus delivered through the passage 172 and the passage 192 in the rear seat 190, as seen in Fig. 18.
When the ECM 72 commands opening of the exhaust valves 40 of a cylinder 34, the ECM 72 energizes the solenoid winding 180, causing the armature 182 and the load adapter 184 to move to the right as seen in Fig. 18 against the force of the return spring 188. Such movement permits the ball 202 to also move to the right into engagement with the sealing surface 200 (Fig. 16) under the influence of the pressurized oil in the passage 192, thereby permitting the pressurized oil to pass in the space between the ball 202 and the sealing surface 194. The pressurized oil flows through the passage 198 and the bore 206 into the passage 204 and the upper portion 208 of the receiving bore 140. The high fluid pressure on the top of the valve spool 212 causes it to move downwardly. The spring rate of the spring 230 is selected to be substantially higher than the spring rate of the return spring 234, and hence movement of the valve spool 212 downwardly tends to cause the piston 226 to also move downwardly. Such movement continues until the swivel foot takes up the lash and contacts the exhaust rocker arm 55. At this point, further travel of the piston 226 is temporarily prevented owing to the cylinder compression pressures on the exhaust valves 40. However, the high fluid pressure exerted on the top of the valve spool 212 is sufficient to continue moving the valve spool 212 downwardly against the force of the spring 230. Eventually, the relative movement between the valve spool 212 and the piston 226 causes an outer high pressure annulus 258 and a high pressure passage 260 (Figs. 15, 18 and 19) in fluid communication with the passage 170 to be placed in fluid communication with a piston passage 262 via an inner high pressure annulus 264. Further, a low pressure annulus 266 of the spool 212 is taken out of fluid communication with the piston passage 262.
The high fluid pressure passing through the piston passage 262 acts on the large diameter of the piston 226 so that large forces are developed which cause the actuator pin 240 and the swivel foot 246 to overcome the resisting forces of the compression pressure and valve spring load exerted by valve springs 267 (Figs. 7 and 8). As a result, the exhaust valves 40 open and allow the cylinder to start blowing down pressure. During this time, the valve spool 212 travels with the piston 226 in a downward direction until the enlarged head 216 of the valve spool 212 contacts a lower portion 270 of the lash stop adjuster 220. At this point, further travel of the valve spool 212 in the downward direction is prevented while the piston 226 continues to move downwardly. As seen in Fig. 19, the inner high pressure annulus 264 is eventually covered by the piston 226 and the low pressure annulus 266 is uncovered. The low pressure annulus 266 is coupled by a passage 268 (Figs. 15, 18 and 19) to the lower recess portion 252 which, as noted previously, is coupled by the oil return passage 250 to the pump inlet 160. Hence, at this time, the piston passage 262 and the upper face of the piston 226 are placed in fluid communication with low pressure oil. High pressure oil is vented from the cavity above the piston 226 and the exhaust valves 40 stop in the open position. Thereafter, the piston 226 slowly oscillates between a firεt position, at which the inner high pressure annulus 264 is uncovered, and a second position, at which the low pressure annulus 266 is uncovered, to vent oil as necessary to maintain the exhaust valves 40 in the open position as the cylinder 34 blows down. During the time that the exhaust valves 40 are in the open position, the ECM 72 provides drive current according to a predetermined schedule to provide good coil life and low power consumption.
When the exhaust valves 40 are to be closed, the ECM 72 terminates current flow in the solenoid winding 180. The return spring 188 then moves the load adapter 184 to the left as seen in Figs. 18 and 19 so that the ball 202 is forced against the sealing surface 194 of the rear seat 190. The high pressure fluid above the valve spool 212 flows back through the passage 204, the bore 206, a gap 274 between the load adapter 184 and the front seat 196 and a passage 276 to the oil sump. In response to the venting of high pressure oil, the valve spool 212 is moved upwardly under the influence of the spring 230. As the valve spool 212 moves upwardly, the low pressure annulus 266 is uncovered and the high pressure annulus 258 is covered by the piston 226, thereby causing the high pressure oil above the piston 226 to be vented. The return spring 234 and the exhaust valve springs 267 force the piston 226 upwardly and the exhaust valves 40 close. The closing velocity is controlled by the flow rate past the ball 202 into the passage 276. The valve spool 212 eventually seats against an upper surface 280 of the lash stop adjuster 220 and the piston 226 returns to the original position as a result of venting of oil through the inner high pressure annulus 264 and the low pressure annulus 266 such that the passage 268 is in fluid communication with the latter. As should be evident to one of ordinary skill in the art, the stopping position of the piston 226 is dependent upon the spring rates of the springs 230, 234. Oil remaining in the lower recess portion 252 is returned to the pump inlet 160 via the oil return passage 250.
The foregoing sequence of events is repeated each time the exhaust valves 40 are opened. When the braking action of the engine is to be terminated, the ECM 72 closes the solenoid valve 74 and rapidly cycles the solenoid control valve 106 (and the other solenoid control valves) a predetermined number of cycles to vent off the stored high pressure oil to sump.
Fig. 20 and 21 illustrate output and driver circuits of the ECM 72 as well as the wiring interconnections between the ECM 72 and a plurality of electronically controlled unit fuel injectors 300a- 300f, which are individually operated to control the flow of fuel into the engine cylinders 34, and the solenoid control valves of the present invention, here illustrated as including the solenoid control valves 106, 108 and additional solenoid valves 301a-301d. Of course, the number of solenoid control valves would vary from that shown in Fig. 20 in dependence upon the number of cylinders to be used in engine braking. The ECM 72 includes six solenoid drivers 302a-302f, each of which is coupled to a first terminal of and associated with one of the injectors 300a-300f and one of the solenoid control valves 106, 108 and 301a-301d, respectively. Four current control circuits 304, 306, 308 and 310 are also included in the ECM 72. The current control circuit 304 is coupled by diodes D1-D3 to second terminals of the unit injectors 300a-300c, respectively, while the current control circuit 306 is coupled by diodes D4-D6 to second terminals of the unit injectors 300d-300f, respectively. In addition, the current control circuit 308 is coupled by diodes . D7-D9 to second terminals of the brake control solenoids 106, 108 and 301a, respectively, whereas the current control circuit 310 is coupled by diodes D10- D12 to second terminals of the brake control solenoids 301b-301d, respectively. Also, a solenoid driver 312 is coupled to the solenoid 74.
In order to actuate any particular device 300a-300f, 106, 108 or 301a-301d, the ECM 72 need only actuate the appropriate driver 302a-302f and the appropriate current control circuit 304-310. Thus, for example, if the unit injector 300a is to be actuated, the driver 302a is operated as is the current control circuit 304 so that a current path is established therethrough. Similarly, if the solenoid control valve 3Old is to be actuated, the driver 302f and the current control circuit 310 are operated to establish a current path through the control valve 3Old. In addition, when one or more of the control valves 106, 108 or 301a-301d are to be actuated, the solenoid driver 312 is operated to deliver current to the solenoid 74, except when the solenoid control valve 106 is rapidly cycled as noted above.
It should be noted that when the ECM 72 is used to operate the fuel injectors 300a-300f alone and the brake control solenoids 106, 108 and 301a-301d are not included therewith, a pair of wires are connected between the ECM 72 and each injector 300a-300f. When the brake control solenoids 106, 108 and 301a-301d are added to provide engine braking capability, the only further wires that must be added are a jumper wire at each cylinder interconnecting the associated brake control solenoid and fuel injector and a return wire between the second terminal of each brake control solenoid and the ECM 72. The diodes D1-D12 permit multiplexing of the current control circuits 304-310; i.e., the current control circuits 304-310 determine whether an associated injector or brake control is operating. Also, the current versus time wave shapes for the injectors and/or solenoid control valves are controlled by these circuits. Fig. 21 illustrates the balance of the ECM
72 in greater detail, and, in particular, circuits for commanding proper operation of the drivers 302a-302f and the current control circuits 304, 306, 308 and 310. The ECM 72 is responsive to the output of a select switch 330, a cam wheel 332 and a sensor 334 and a drive shaft gear 336 and a sensor 338. The ECM 72 develops drive signals on lines 340a-340j which are provided to the drivers 302a-302f and to the current control circuits 304, 306, 308 and 310, respectively, to properly energize the windings of the solenoid control valves 106, 108 and 301a-301d. In addition, a signal is developed on a line 341 which is supplied to the solenoid driver 312 to operate same. The select switch 330 may be manipulated by an operator to select a desired magnitude of braking, for example, in a range between zero and 100% braking. The output of the select switch 330 is passed to a high wins circuit 342 in the ECM 72, which in turn provides an output to a braking control module 344 which is selectively enabled by a block 345 when engine braking is to occur, as described in greater detail hereinafter. The braking control module 344 further receives an engine position signal developed on a line 346 by the cam wheel 332 and the sensor 334. The cam wheel is driven by the engine camshaft 46 (which is in turn driven by the crankshaft 42 as noted above) and includes a plurality of teeth 348 of magnetic material, three of which are shown in Fig. 21, and which pass in proximity to the sensor 334 as the cam wheel 332 rotates. The sensor 334, which may be a Hall effect device, develops a pulse type signal on the line 346 in response to passage of the teeth 348 past the sensor 334. The signal on the line 346 is also provided to a cylinder select circuit 350 and a differentiator 352. The differentiator 352 converts the position signal on the line 346 into an engine speed signal which, together with the cylinder select circuit 350 and the signal developed on the line 346, instruct the braking control module 344, when enabled, to provide control signals on the lines 340a-340f with the proper timing. Further, when the braking control module 344 is enabled, a signal is developed on the line 341 to activate the solenoid drive 312 and the solenoid 74. The sensor 338 detects the passage of teeth on the gear 336 and develops a vehicle speed signal on a line 354 which is provided to a noninverting input of a summer 356. An inverting input of the summer 356 receives a signal on a line 358 representing a desired speed for the vehicle. The signal on the line 358 may be developed by a cruise control or any other speed setting device. The resulting error signal developed by the summer 356 is provided to the high wins circuit 342 over a line 360. The high wins circuit 342 provides the signal developed by the select switch 330 or the error signal on the line 360 to the braking control module 344 as a signal %BRAKING on a line 361 in dependence upon which signal has the higher magnitude. If the error signal developed by the summer 356 is negative in sign and the signal developed by the select switch 330 is at a magnitude commanding no (or 0%) braking, the high wins circuit 342 instructs the braking control module 344 to terminate engine braking. A boost control module 362 is responsive to a signal, called BOOST, developed by a sensor 364 on a line 365 which detects the magnitude of intake manifold air pressure of a turbocharger 366 of the engine 30. In the preferred embodiment, the turbocharger 366 has a variable blade geometry which allows boost level to be controlled by the boost control module 362. The module 362 receives a limiter signal on a line 368 developed by the braking control module 344 which allows for as much boost as the turbocharger 366 can develop under the current engine conditions but prevents the boost control module from increasing boost to a level which would cause damage to engine components.
The braking control module includes a lookup table or map 370 which is addressed by the signals %BRAKING and BOOST on the lines 361 and 365, respectively, and provides output signals DEG. ON and DEG. OFF to the control of Fig. 23. Fig. 22 illustrates in three dimensional form the contents of the map 370 including the output signals DEG. ON and DEG. OFF as a function of the addressing signals %BRAKING and BOOST. The signals DEG. ON and DEG. OFF indicate the timing of solenoid control valve actuation and deactuation, respectively, in degrees after a cam marker signal is produced by the cam wheel 332 and the sensor 334. Specifically, the cam wheel 332 includes 24 teeth, 21 of which are identical to one another and each of which occupies 80% of a tooth pitch with a 20% gap. Two of the remaining three teeth are adjacent to one another (i.e., consecutive) while the third is spaced therefrom and each occupies 50% of a tooth pitch with a 50% gap. The ECM 72 detects these non-uniformities to determine when cylinder number 1 of the engine 30 reaches TDC between compression and power strokes as well as engine rotation direction.
The signal DEG ON is provided to a computational block 372 which is responsive to the engine speed signal developed by the block 352 of Fig. 21 and which develops a signal representing the time after a reference point or marker on the cam wheel 332 passes the sensor 334 at which a signal on one of the lines 340a-340f is to be switched to a high state. In like fashion, a computational block 374 is responsive to the engine speed signal developed by the block 352 and develops a signal representing the time after the reference point passes the sensor 334 at which the signal on the same line 340a-340f is to be switched to an off state. The signals from the blocks 372, 374 are supplied to delay blocks 376, 378, respectively, which develop on and off signals for a solenoid driver block 380 in dependence upon the marker developed by the cam wheel 332 and the sensor 334 and in dependence upon the particular cylinder which is to be employed next in braking. The signal developed by the delay block 376 comprises a narrow pulse having a leading edge which causes the solenoid driver block 380 to develop an output signal having a transition from a low state to a high state whereas the timer block 378 develops a narrow pulse having a leading edge which causes the output signal developed by the solenoid driver circuit 380 to switch from a high state to a low state. The signal developed by solenoid driver circuit 380 is routed to the appropriate output line 340a-340f by a cylinder select switch 382 which is responsive to the cylinder select signal developed by the block 350 of Fig. 21.
The braking control module 344 is enabled by the block 345 in dependence upon certain sensed conditions as detected by sensors/switches 383. The sensors/switches include a clutch switch 383a which detects when a clutch of the vehicle is engaged by an operator (i.e., when the vehicle wheels are disengaged from the vehicle engine) , a throttle position switch 383b which detects when a throttle pedal is depressed, an engine speed sensor 383c which detects the speed of the engine, a service brake switch 383d which develops a signal representing whether the service brake pedal of the vehicle is depressed, a cruise control on/off switch 383e and a brake on/off switch 383f. If desired, the output of the circuit 352 may be supplied in view of the signal developed by the sensor 383c, in which case the sensor 383c may be omitted. According to a preferred embodiment of the present invention, the braking control module 344 is enabled when the on/off switch 383f is on, the engine speed is above a particular level, for example 950 rpm, the driver's foot is off the throttle and clutch and the cruise control is off. The braking control module 344 is also enabled when the on/off switch 383f is on, engine speed is above the certain level, the driver's foot is off the throttle and clutch, the cruise control is on and the driver depresses the service brake. Under the second set of conditions, and also in accordance with the preferred embodiment, a "coast" mode may be employed wherein engine braking is engaged only while the driver presses the service brake, in which case, the braking control module 344 is disabled when the driver's foot is removed from the service brake. According to an optional "latched" mode of operation operable under the second set of conditions as noted above, the braking control module 344 is enabled by the block 345 once the driver presses the service brake and remains enabled until another input, such as depressing the throttle or selecting 0% braking by means of the switch 330, is supplied.
The block 345 enables an injector control module 384 when the braking control module 344 is disabled, and vice versa. The injector control module 384 supplies signals over the lines 340a-340f as well as over lines 340g and 34Oh to the current control circuits 304 and 306 of Fig. 20 so that fuel injection is accomplished.
Referring again to Fig. 23, the signal developed by the solenoid driver circuit 380 is also provided to a current control logic block 386 which in turn supplies signals on lines 340i, 340j of appropriate waveshape and synchronization with the signals on the lines 340a-340f to the blocks 308 and 310 of Fig. 20. Programming for effecting this operation is completely within the abilities of one of ordinary skill in the art and will not be described in detail herein.
It should be noted that any or all of the elements represented in Figs. 21 and 23 may be implemented by software, hardware or by a combination of the two.
The foregoing system permits a wide degree of flexibility in setting both the timing and duration of exhaust valve opening. This flexibility results in an improvement in the maximum braking achievable within the structural limits of the engine. Also, braking smoothness is improved inasmuch as all of the cylinders of the engine can be utilized to provide braking. In addition, smooth modulation of braking power from zero to maximum can be achieved owing to the ability to precisely control timing and duration of exhaust valve opening at all engine speeds. Still further, in conjunction with a cruise control as noted above, smooth speed control during downhill conditions can be achieved.
Moreover, the use of a pressure-limited bulk modulus accumulator permits setting of a maximum accumulator pressure which prevents damage to engine components. Specifically, with the accumulator maximum pressure properly set, the maximum force applied to the exhaust valves can never exceed a preset limit regardless of the time of the valve opening signal. If the valve opening signal is developed at a time where cylinder pressures are extremely high, the exhaust valves simply will not open rather than causing a structural failure of the system.
Also, by recycling oil back to the pump inlet passage 160 from the actuator 110 during braking, demands placed on an oil pump of the engine are minimized once braking operation is implemented.
It should be noted that the integration of a cruise control and/or a turbocharger control in the circuitry of Fig. 21 is optional. In fact, the circuitry of Fig. 21 may be modified in a manner evident to one of ordinary skill in the art to implement use of a traction control therewith whereby braking horsepower is modulated to prevent wheel slip, if desired. The integration of the injector and braking wiring and connections to the ECM permits multiple use of drivers, control logic and wiring and thus involves little additional cost to achieve a robust and precise brake control system.
In summary, the control of the present invention provides sufficient force to open multiple exhaust valves against in-cylinder compression pressures high enough to achieve desired engine braking power levels and allows adjustment of the free travel or lash between the actuator and the exhaust valve rocker arm. In addition, the total travel of the actuator is controlled to prevent valve-to-piston interference and to prevent high impact loads in the actuator. Still further, the opening and closing velocities of the exhaust valves can be controlled. As the foregoing discussion demonstrates, engine braking can be accomplished by opening the exhaust valves in some or all of the engine cylinders at a point just prior to TDC. As an alternative, the exhaust valve(s) associated with each cylinder may also be opened at a point near bottom dead center (BDC) so that cylinder pressure is boosted. This increased cylinder pressure causes a larger braking force to be developed owing to the increased retarding effect on the engine crankshaft.
More specifically, as seen in Figs. 24 and 25, in addition to the usual exhaust valve opening, event illustrated by the curve 390 during the exhaust stroke of the engine and the exhaust valve opening event represented by the curve 392 surrounding top dead center at the end of a compression stroke as implemented by the exhaust control described previously, a further exhaust valve opening event is added near BDC, as represented by the curve 394. This event, which is added by suitable programming of the ECM 72 in a manner evident to one of ordinary skill in the art, permits a pressure spike arising in the exhaust manifold of the engine and represented by the portion 396 of an exhaust manifold pressure curve 398, to boost the pressure in the cylinder just prior to compression. This boosting results in a pressure increase over the cylinder pressure represented by the curve 400 of Fig. 25. Fig. 26 illustrates an alternative embodiment of the accumulator 100 which may take the place of the bulk oil modulus accumulator illustrated in Fig. 12. The accumulator of Fig. 26 is of the mechanical type and includes an expandable accumulator chamber 412 including a fixed cylindrical center portion 414 and a movable outer portion 416 which fits closely around the center portion 414 and is concentric therewith. A pair of springs, shown schematically at 418 and 419, are located between and bear against a shouldered portion 420 of the outer portion 416 and a spacer 421 disposed on the engine head and bias the outer portion 416 upwardly as seen in Fig. 26.
The center portion 414 includes a central bore 422 which is in fluid communication via conduits 424, 426 and 428 with the pump unit 88. During operation, the pump unit 88 pressurizes oil which is supplied through the conduits 424-428 to the central bore 422 of the center portion 414. A threaded plug 430 is threaded into a lower portion of the outer portion 416 to provide a seal against escape of oil and hence the pressurized oil collects in a recess 432 just above the threaded plug 430. The pressurized oil forces the outer portion 416 downwardly against the force exerted by the springs 418 and 419 so that the volume of the recess 432 increases. Overfilling of the recess 432 is prevented by vent holes 434, 436 which, as oil is introduced into the recess 432, are eventually uncovered and cause oil in the recess 432 to be vented.
Referring to Fig. 27, there is illustrated an actuator 440 which may be used in place of the actuator 110 or 112 illustrated in Fig. 5. The actuator 440 includes an outer sleeve 442 which is slip-fit into a bore 444 in the main body 132 at an adjustable axial position and is sealed by the upper and lower 0-rings 445a, 445b. If desired, a close fit may be provided between the outer sleeve 442 and the bore 444, in which case the O-rings 445a, 445b may be omitted. An upper portion 446 is threaded into a bore 448 in the main body 132 and a washer 450 is placed over a threaded end 451. A nut 452 is threaded over the threaded end 451 and assists in maintaining the actuator 440 within the main body 132 at the desired axial position. A threaded plug 454 is received within a threaded bore 456 at an adjustable axial position within the upper portion 446.
Disposed within the outer sleeve 442 is a slave fluid control device in the form of a piston 458 having a central bore 460 therethrough and an extended lower portion 462 that carries a socketed swivel foot 464 which is retained within a hollow end of the lower portion 462 by an O-ring retainer 465. The swivel foot 464 is adapted to engage an exhaust valve rocker arm (not shown in Fig. 27) . The lower portion 462 extends beyond an open end 466 of the outer sleeve 442. A spring, illustrated schematically at 467, is placed in compression between a washer 468 and retaining ring 469 and a shoulder 470 of the piston 458. First and second sliding seals 472, 474 provide sealing between the piston 458 and the outer sleeve 442. If desired, the seals 472, 474 may be omitted if a tight sliding fit is provided between the piston 458 and the other sleeve 442. A master fluid control device in the form of a valve spool 476 is disposed within the central bore 460. A spring 477 is disposed between the swivel foot 464 and a shoulder 478 of the valve spool 476 and biases the valve spool 476 upwardly. A further sliding seal 480 is disposed between the valve spool 476 and the outer sleeve 442.
The operation of the actuator 440 is identical to the actuator 110 or 112 described above in the way that the piston 458 and the valve spool 476 interact to control the lift and regulate the force provided by the piston 458. The piston 458 has angled bores (not seen in the section of Fig. 27) and an annular groove 482 which moves into and out of engagement with a high pressure annulus 484 and a low pressure volume 486 which is connected by a passage
488 to sump to provide all of the functions previously described in the preferred embodiment, with the exception that oil flows freely out of the open end 466 of the outer sleeve 442 rather than being returned to the pump inlet.
The amount of travel of the spool 476 is determined by the axial position of the plug 454 in the threaded bore 456. In addition, the lash or space between the swivel foot 464 and the exhaust rocker arm can be adjusted by adjusting the axial position of the upper portion 446 of the actuator 440 in the threaded bore 448. The nut 452 may then be tightened to prevent further axial displacement of the actuator 440. Referring now to Fig. 28, there is illustrated a further actuator 490 according to the present invention. The actuator 490 is similar to the actuator 440 and operates in the same fashion, and hence only the differences between the two will be discussed in detail herein.
The actuator 490 includes an actuator body 492 which is tightly slip-fitted within a bore 494 of the main body 132. A slave fluid control device in the form of a piston 496 includes an extended lower portion 498 having a threaded bore 499. A cylindrical member 500 is threaded into the threaded bore 499 at an adjustable position and is retained at such position by any suitable means, such as a nylon patch or a known locking compound. The cylindrical member 500 includes a socketed swivel foot 501 which is retained within a hollow end of the cylindrical member 500 by a retaining O-ring 503a and which is similar to the swivel foot 464 in that the foot 501 is capable of engaging a rocker arm which is in turn coupled to exhaust valves of a cylinder. The lower portion 498 extends through an end cap 502 threaded into the bore 494 and an O-ring 503b prevents leakage of oil between the end cap 502 and the lower portion 498. A set of belleville springs 504 or, alternatively, a wave spring, is placed in compression between the piston 496 and the end cap 502. The cap 502 further holds the actuator body 492 against an upper surface of the bore 494. In addition, a pair of optional sliding seals 505a, 505b may be provided between the piston 496 and the actuator body 492, if necessary or desirable, or close fit machined surfaces of the piston 496 and the 492 may be provided, in which case the seals 505a, 505b would not be necessary. A master fluid control device in the form of a valve spool 506 is closely received within a central bore 507 of the piston 496. The valve spool 506 includes an enlarged head 508 disposed within a shouldered recess 509 in the main body 492. A sliding seal 510 is disposed between the valve spool 506 and the actuator body 492 and a spring 511 is placed in compression between the cylindrical member 500 and the valve spool 506. Although not shown, a passage extends between the space containing the belleville springs 504 to the pump inlet 160 of Fig. 9.
As in the previous embodiments, the piston 496 and the valve spool 506 include the passages and annular grooves which cause the actuator 490 to operate in the fashion described above.
The gap between an upper face 512 of the enlarged head 508 and a further face 514 formed in the main body 132 determines the amount of lift of the valve spool 506. The lash adjustment is effected by threading the cylindrical portion 500 into the threaded bore 499 to a desired position.
Fig. 29 illustrates yet another actuator 526 according to the present invention wherein elements common to Figs. 28 and 29 are assigned like reference numerals. As in the embodiment of Fig. 28, a piston 496 includes a central bore 507 which receives a valve spool 506. Also, a cylindrical member 500 is threaded into an extended lower portion 498 of the piston 496 at an adjustable position and a socketed swivel foot 501 is carried on the end of the cylindrical portion 500. However, unlike the embodiment of Fig. 28, the piston 496 is received directly within a bore 528 in the main body 132 without the use of the actuator body 492. Optional sliding seals 529a, 529b, similar to the seals 505a, 505b, respectively, may be provided to seal between the piston 496 and the bore 528. A threaded end cap 530 is threaded into the bore 528 and carries an O-ring 532 which prevents leakage of oil therepast. A coil-type spring 533 is substituted for the belleville springs 504 and is placed in compression between the end cap 530 and a recess 534 in the piston 496.
A threaded plug 535 is threaded into a threaded bore 536 in the main body 132 at an adjustable position to provide an adjustable amount of lift of the valve spool 506. A sliding seal 537, similar to the seal 510, provides a seal between the valve spool 506 and the bore 528. The embodiment of Fig. 29 is otherwise identical to the embodiment of Fig. 28 and operates in the same fashion.
In addition to the foregoing alternatives, it should be noted that the ball valve 176 illustrated in Figs. 15 and 16 may be replaced by any other suitable type of valve. For example, as seen in Fig. 30, a poppet valve 550 may be substituted for the ball valve 176. As in the ball valve 176 of Figs. 15-19, the poppet valve 550 controls the passage of pressurized oil between the passage 172 and the passage 204. The poppet valve includes a valve member 552 which is disposed within and guided by a valve bore 554. The valve member 552 further includes a head 556 which is threaded to accept the threads of a screw 558 identical to the screw 186 of Figs. 15-19. As in the previous embodiment, the screw 558 includes a head which is received within an armature 560.
A rear stop 562 is spaced from a solenoid winding, illustrated schematically at 564, by an armature spacer 566 and is located adjacent a poppet spacer 568. The valve member 552 further includes an intermediate portion 570 which is disposed within a stepped recess 572 in the poppet spacer 568. The intermediate portion 570 includes a circumferential flange 574 having a sealing surface 576 which is biased into engagement with a sealing seat 578 by a spring 580 placed in compression between the flange 574 and a face 582 of the rear stop 562.
The poppet valve 550 is shown in the on or energized condition wherein the armature 560 is pulled toward the solenoid winding 564 owing to the current flowing therein. This displacement of the armature 560 causes the valve member 552 to be similarly displaced, thereby causing the sealing surface 576 to be spaced from the sealing seat 578. This spacing permits fluid communication between the passages 172 and 204. In addition, a shoulder 590 of the intermediate portion 570 is forced against the face 582 of the rear stop to prevent fluid communication between the passages 172 and 204 on the one hand and a drain passage 592 on the other hand.
When current flow to the solenoid winding 564 is terminated, the spring 580 urges the valve member 552 to the left as seen in Fig. 30 so that the sealing surface 576 is forced against the sealing seat 578, thereby preventing fluid communication between the passages 172 and 204. In addition, the shoulder 590 is spaced from the face 582 of the rear stop 562, thereby permitting fluid communication between the passage 204 and the drain passage 592.
Numerous modifications and alternative embodiments of the invention will be apparent to those skilled in the art in view of the foregoing description. Accordingly, this description is to be construed as illustrative only and is for the purpose of teaching those skilled in the art the best mode of carrying out the invention. The details of the structure may be varied substantially without departing from the spirit of the invention, and the exclusive use of all modifications which come within the scope of the appended claims is reserved.

Claims

-Se¬ri a l *mc;
1. A braking control for an engine (30) having a combustion chamber (34) and an exhaust valve (40) movable between open and closed positions wherein the engine is operable to undergo engine events each of which occurs at a timing point, comprising: electrohydraulic means (70) for engaging the exhaust valve; and control means (72) for timing movement of the exhaust valve (40) to the open position selectably independent of the timing points to thereby permit selection of an adjustable braking magnitude including means (370) for storing actuation points and means (342) for selecting actuation points from the storing means.
2. The braking control of claim l, wherein the control means (72) includes means (374, 378) for maintaining the exhaust port in the open position for a selectable duration.
3. The braking control of claim l, wherein the control means is implemented by an engine control module (72) .
4. The braking control of claim 1, wherein the electrohydraulic means (70) includes a master fluid control device (212) and a slave fluid control device (226) .
5. The braking control of claim 4, wherein the master fluid control device comprises a valve spool (212) which is movable to apply high pressure fluid to the slave fluid control device (226) .
6. The braking control of claim 5, wherein the slave fluid control device comprises a piston (226) disposed adjacent the valve spool (212) .
7. The braking control of claim 6, wherein the electrohydraulic means (70) further includes a spring (230) disposed between the valve spool (212) and the piston (226) .
8. The braking control of claim 7, wherein the piston (226) includes a passage (262) and wherein the spool (212) includes a high pressure annulus (264) coupled to a source (100) of high fluid pressure and a low pressure annulus (266) coupled to a source of low fluid pressure and is movable relative to the piston (226) to interconnect the passage with the high pressure annulus (264) or the low pressure annulus (266) .
9. The braking control of claim 8, wherein the electrohydraulic means (70) further includes a return passage (250) interconnecting the low pressure annulus (266) and the source (100) of high fluid pressure.
10. The braking control of claim 7, wherein the spring (230) is disposed in compression on a first side of the piston (226) and wherein the electrohydraulic means (70) further includes a return spring (234) disposed in compression on a second side of the piston (226) .
11. The braking control of claim 10, wherein the spring (230) on the first side of the piston (226) has a spring rate exceeding a spring rate of the return spring (234) on the second side of the piston (226) .
12. The braking control of claim 1, wherein the electrohydraulic means (70) includes an actuator pin (240) engagable with the exhaust valve (40) and means for limiting travel of the actuator pin (240) to provide a selectable lash between the actuator pin (240) and the exhaust valve (40) .
13. The braking control of claim 12, wherein the electrohydraulic means (70) includes an actuator body (110) and wherein the limiting means comprises a lash stop adjuster (220) carried by the actuator body.
14. The braking control of claim 4, wherein the electrohydraulic means (70) includes a valve (176) disposed between a high pressure fluid passage (172) and the master fluid control device (212).
15. The braking control of claim 14, wherein the valve includes a movable ball element (202) and wherein the electrohydraulic means (70) further includes means (184) for moving the ball element to selectively couple the high pressure fluid passage to the master fluid control device (212) .
16. The braking control of claim 1, wherein fuel is injected into the combustion chamber (34) by an electrically-controlled fuel injector (300a-300f) and wherein the control means (72) is connected to first terminals of both of the electrohydraulic means (70) and the fuel injector (300a-300f) by a single wire and to second terminals of the electrohydraulic means (70) and the fuel injector (300a-300f) by a pair of additional wires.
17. The braking control of claim 16, wherein diodes (D1-D12) are connected in series with the pair of additional wires.
18. The braking control of claim 1, wherein the electrohydraulic means (70) includes an actuator (HO) , a source of high pressure fluid including an accumulator (100) which is pressurized by a rocker arm driven pump (88) and means (106) for coupling the high pressure fluid source to the actuator (110) .
19. The braking control of claim l, in combination with an engine cruise control (383e) which develops a braking command signal.
20. The braking' control of claim l, in combination with a traction control which develops a braking command signal.
21. The braking control of claim 1, wherein the control means (72) is further responsive to a position signal developed by a position sensor (334) which detects camshaft position.
22. The braking control of claim 21, wherein the engine (30) propels a vehicle and wherein the control means (72) is further responsive to a speed signal representing vehicle speed.
23. The braking control of claim 1, wherein the engine (30) includes a controllable inlet pressure boost apparatus (366) and further including means (362) for controlling the boost apparatus (366) .
24. The braking control of claim 23, wherein the boost apparatus comprises a turbocharger (366) having vanes movable in response to a turbo control signal generated by the controlling means.
25. A braking control for an engine (30) having a combustion chamber (34) and an exhaust valve (40) movable between open and closed positions wherein the engine (30) is operable to undergo engine events each of which occurs at a timing point, comprising: an electrically-operable control valve (106); an actuator (110) coupled between the control valve (106) and the exhaust valve (40) and operable by the control valve (106) to move the exhaust valve (40) to an open position; and an electronic engine control (72) coupled to the control valve (106) for operating same to move the exhaust valve (40) to the open position selectably independent of the timing points to thereby permit selection of an adjustable braking magnitude wherein the engine control includes a look-up table (370) for storing actuation points, selection circuitry (342) for selecting actuation points from the storing means and drive circuity (372-382) for developing drive signals for the control valve (106) .
26. The braking control of claim 25, wherein the drive circuitry (372-382) includes computational circuits (372, 374) and delay circuits (376, 378) responsive to signals developed at an output of the look-up table (370) for independently controlling timing and duration of opening of the exhaust valve (40) .
27. The braking control of claim 26, wherein the drive circuitry (372-382) further includes a solenoid driver (380) coupled to the delay circuits (376, 378) and a cylinder select switch (382) coupled to the solenoid driver (380) .
28. The braking control of claim 27, wherein the electrically-operable control valve (106) includes a solenoid winding (180) coupled to the cylinder select switch (382) , a load adapter (184) and a valve (176) .
29. The braking control of claim 25, wherein the actuator (110) includes a valve element (212) which is movable to apply high pressure fluid to a piston (226) .
30. The braking control of claim 29, wherein the piston (226) includes a passage (262) and wherein the valve element (212) includes a high pressure annulus (264) coupled to a source (100) of high fluid pressure and a low pressure annulus (266) coupled to a source of low fluid pressure and is movable relative to the piston (226) to interconnect the passage with the high pressure annulus (264) or the low pressure annulus (266) .
31. The braking control of claim 30, wherein a first spring (230) is disposed in compression on a first side of the piston (226) and a second spring (234) is disposed in compression on a second side of the piston (226) wherein the first spring (230) has a spring rate exceeding a spring rate of the second spring (234) .
32. The braking control of claim 25, wherein the actuator (110) includes an actuator pin (240) engagable with the exhaust valve (40) and means for limiting travel of the actuator pin (240) to provide a selectable lash between the actuator pin (240) and the exhaust valve (40) .
33. The braking control of claim 25, wherein fuel is injected into the combustion chamber (34) by an electrically-controlled fuel injector (300a-300f) and wherein the engine control is connected to first terminals of both of the control valve (106) and the fuel injector (300a-300f) by a single wire and to second terminals of the control valve (106) and the fuel injector (300a-300f) by a pair of additional wires and diodes.
34. The braking control of claim 25, wherein an accumulator (100) pressurized by a rocker arm driven pump (88) is coupled to the actuator (110) by the control valve (106) .
35. The braking control of claim 25, in combination with an engine cruise control (383e) which develops a braking command signal.
36. The braking control of claim 25, in combination with a traction control which develops a braking command signal.
37. The braking control of claim 25, wherein the engine (30) propels a vehicle and wherein the engine control is further responsive to a speed signal representing vehicle speed.
38. The braking control of claim 25, wherein the engine (30) includes a turbocharger (366) having vanes movable in response to a turbo control signal developed by the engine control.
PCT/US1996/006326 1995-06-06 1996-05-06 Engine compression braking apparatus and method WO1996039572A1 (en)

Priority Applications (3)

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EP96913352A EP0774051B1 (en) 1995-06-06 1996-05-06 Engine compression braking apparatus and method
DE69629089T DE69629089T2 (en) 1995-06-06 1996-05-06 COMPRESSION MOTOR BRAKE DEVICE AND METHOD
JP9500513A JPH10504082A (en) 1995-06-06 1996-05-06 Engine compression type brake device and method

Applications Claiming Priority (4)

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US08/468,937 1995-06-06
US08/468,937 US5540201A (en) 1994-07-29 1995-06-06 Engine compression braking apparatus and method
US08/514,357 US5647318A (en) 1994-07-29 1995-08-11 Engine compression braking apparatus and method
US08/514,357 1995-08-11

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Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1362989A3 (en) * 2002-05-14 2007-09-26 Caterpillar Inc. control system and method for variable valve actuation system
EP1362990A3 (en) * 2002-05-14 2007-10-17 Caterpillar Inc. Engine valve actuation system
GB2443419A (en) * 2006-11-06 2008-05-07 Mechadyne Plc Internal combustion engine valve mechanism allowing variable phase compression braking
WO2014055821A1 (en) * 2012-10-05 2014-04-10 Eaton Corporation Hybrid cam-camless variable valve actuation system
US9611767B2 (en) 2014-09-18 2017-04-04 Jacobs Vehicle Systems, Inc. Lost motion assembly in a valve bridge for use with a valve train comprising a hydraulic lash adjuster

Families Citing this family (40)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
SE502614C2 (en) * 1994-03-29 1995-11-20 Volvo Ab Apparatus for controlling the engine braking power of an internal combustion engine
US5813231A (en) * 1994-07-29 1998-09-29 Caterpillar Inc. Engine compression braking apparatus utilizing a variable geometry turbocharger
US5809964A (en) * 1997-02-03 1998-09-22 Diesel Engine Retarders, Inc. Method and apparatus to accomplish exhaust air recirculation during engine braking and/or exhaust gas recirculation during positive power operation of an internal combustion engine
DE19717094C1 (en) * 1997-04-23 1998-06-18 Daimler Benz Ag Internal combustion engine with suction conduit, exhaust gas conduit and exhaust turbocharger
US6718940B2 (en) 1998-04-03 2004-04-13 Diesel Engine Retarders, Inc. Hydraulic lash adjuster with compression release brake
DE19819699B4 (en) * 1998-05-02 2005-05-19 Daimlerchrysler Ag turbocharger
US5921216A (en) * 1998-05-18 1999-07-13 Daimler-Benz Ag Internal combustion engine
JP2000008931A (en) * 1998-06-19 2000-01-11 Hitachi Ltd Engine control device with electromagnetic drive type intake/exhaust valve
DE19836677C2 (en) * 1998-08-13 2001-04-19 Daimler Chrysler Ag Engine brake device for an internal combustion engine with an exhaust gas turbocharger
AUPP565098A0 (en) * 1998-09-03 1998-09-24 Hbp Permo-Drive Pty Ltd Energy management system
US20040173396A1 (en) * 1998-09-03 2004-09-09 Permo-Drive Research And Development Pty. Ltd. Energy management system
US6314926B1 (en) 1999-05-24 2001-11-13 Jenera Enterprises Ltd Valve control apparatus
WO2001020150A1 (en) 1999-09-17 2001-03-22 Diesel Engine Retarders, Inc. Captive volume accumulator for a lost motion system
US6216668B1 (en) * 1999-11-16 2001-04-17 Deere & Company Engine performance measuring method
DE60045108D1 (en) 1999-12-20 2010-11-25 Jacobs Vehicle Systems Inc METHOD AND DEVICE FOR HYDRAULIC INPUT AND RELEASE OF A MOTOR BRAKE BY TOTGANG
US6209563B1 (en) 2000-01-07 2001-04-03 Saturn Electronics & Engineering, Inc. Solenoid control valve
US6581634B2 (en) 2000-01-10 2003-06-24 Saturn Electronics & Engineering, Inc. Solenoid control valve with particle gettering magnet
US6321767B1 (en) 2000-01-10 2001-11-27 Saturn Electronics & Engineering, Inc. High flow solenoid control valve
US6609495B1 (en) 2000-12-19 2003-08-26 Caterpillar Inc Electronic control of engine braking cycle
US6560963B2 (en) * 2000-12-20 2003-05-13 Caterpillar Inc Variable timing to avoid turbocharger overspeed while engine braking under different atmospheric conditions
US20030010315A1 (en) 2001-07-10 2003-01-16 Cornell Sean O. Engine compression release brake and engine using same
US6622694B2 (en) 2001-07-30 2003-09-23 Caterpillar Inc Reduced noise engine compression release braking
US6568367B2 (en) * 2001-07-31 2003-05-27 Caterpillar Inc Engine compression release brake system and method of operation
GB0203490D0 (en) * 2002-02-14 2002-04-03 Holset Engineering Co Exhaust brake control system
US6753771B2 (en) * 2002-05-14 2004-06-22 Indian Head Industries, Inc. Vehicle monitoring system
AUPS300902A0 (en) * 2002-06-18 2002-07-11 Permo-Drive Research And Development Pty Ltd Decoupling mechanism for hydraulic pump/motor assembly
CN101696645B (en) * 2002-12-23 2013-03-27 雅各布斯车辆系统公司 Engine braking methods and apparatus
US6886525B1 (en) * 2003-10-15 2005-05-03 Csxt Intellectual Properties Corporation Locomotive engine with skipfire control system
US7383820B2 (en) 2004-03-19 2008-06-10 Ford Global Technologies, Llc Electromechanical valve timing during a start
US7240663B2 (en) * 2004-03-19 2007-07-10 Ford Global Technologies, Llc Internal combustion engine shut-down for engine having adjustable valves
US7559309B2 (en) * 2004-03-19 2009-07-14 Ford Global Technologies, Llc Method to start electromechanical valves on an internal combustion engine
US7165391B2 (en) 2004-03-19 2007-01-23 Ford Global Technologies, Llc Method to reduce engine emissions for an engine capable of multi-stroke operation and having a catalyst
US7597172B1 (en) 2005-04-22 2009-10-06 Parker-Hannifin Corporation Gear box for hydraulic energy recovery
EP1920143B1 (en) * 2005-08-18 2010-10-13 Renault Trucks Control method for the intake and exhaust valves of an engine and internal combustion engine comprising such valves
US20090166274A1 (en) * 2007-05-24 2009-07-02 Eaton Corporation Engine valve with a combined engine oil filter and valve actuator solenoid
US8086388B2 (en) * 2008-03-04 2011-12-27 GM Global Technology Operations LLC Camshaft phasor synchronization system for an engine
US8214113B2 (en) * 2008-06-30 2012-07-03 Caterpillar Inc. Retarding system that retards motion of power source
US9573583B2 (en) * 2014-02-27 2017-02-21 Deere & Company Vehicle speed control
EP3298251B1 (en) 2015-05-18 2020-01-01 Eaton Intelligent Power Limited Rocker arm having oil release valve that operates as an accumulator
KR102429177B1 (en) * 2017-12-11 2022-08-03 현대자동차주식회사 Device and method for controlling engine brake device

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2391358A1 (en) * 1977-05-19 1978-12-15 Wallace Murray Corp TURBOCHARGER WITH VARIABLE GEOMETRY TURBINE
US4572114A (en) * 1984-06-01 1986-02-25 The Jacobs Manufacturing Company Process and apparatus for compression release engine retarding producing two compression release events per cylinder per engine cycle
US5121723A (en) * 1991-03-29 1992-06-16 Cummins Electronics Company, Inc. Engine brake control apparatus and method
US5255650A (en) * 1992-06-01 1993-10-26 Caterpillar Inc. Engine braking utilizing unit valve actuation
US5379737A (en) * 1993-08-26 1995-01-10 Jacobs Brake Technology Corporation Electrically controlled timing adjustment for compression release engine brakes

Family Cites Families (188)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1947996A (en) * 1931-10-23 1934-02-20 Int Motor Co Engine brake
GB482990A (en) 1936-06-18 1938-04-08 Christian Wilhelm Paul Heyland Improvements relating to the braking and re-starting or acceleration of vehicles andinstallations driven by internal combustion engines
US2876876A (en) * 1955-11-25 1959-03-10 Clessie L Cummins Diesel engine braking control
US3023870A (en) * 1960-02-15 1962-03-06 Jaime K Udelman Auxiliary brake for vehicles employing ignition advance feature and exhaust valve opening advance feature
US3202182A (en) * 1961-10-16 1965-08-24 Jacobs Mfg Co Balanced poppet valve
DE1204016B (en) * 1962-04-19 1965-10-28 Friedrich Finger Adjustable engine brake for internal combustion engines
US3220392A (en) * 1962-06-04 1965-11-30 Clessie L Cummins Vehicle engine braking and fuel control system
US3234923A (en) * 1962-06-18 1966-02-15 Caterpillar Tractor Co Method and braking system for internal combustion engines
US3332405A (en) * 1965-10-01 1967-07-25 Jacobs Mfg Co Internal combustion engine brake
US3367312A (en) * 1966-01-28 1968-02-06 White Motor Corp Engine braking system
US3405699A (en) * 1966-06-17 1968-10-15 Jacobs Mfg Co Engine braking system with trip valve controlled piston
GB1229207A (en) 1967-10-19 1971-04-21
US3525317A (en) * 1968-03-07 1970-08-25 White Motor Corp Vehicle engine braking system
US3547087A (en) * 1968-08-09 1970-12-15 White Motor Corp Engine valve control for braking operation
US3520287A (en) * 1968-08-09 1970-07-14 White Motor Corp Exhaust valve control for engine braking system
JPS5028563B1 (en) * 1969-12-29 1975-09-17
US3786792A (en) * 1971-05-28 1974-01-22 Mack Trucks Variable valve timing system
DE2151331A1 (en) 1971-10-15 1973-04-19 Bosch Gmbh Robert CONTROL OF INLET AND EXHAUST VALVES IN COMBUSTION ENGINE WITH LIQUID
GB1401626A (en) * 1971-11-13 1975-07-16 Lucas Industries Ltd Electro hydraulic actuator arrangement
US3809033A (en) * 1972-07-11 1974-05-07 Jacobs Mfg Co Rocker arm engine brake system
US3859970A (en) * 1973-01-22 1975-01-14 Allis Chalmers Engine retarder brake
JPS5316850B2 (en) * 1973-12-11 1978-06-03
JPS5629140B2 (en) * 1974-05-16 1981-07-06
US4054156A (en) * 1975-02-24 1977-10-18 The Weatherhead Company Exhaust brake valve
US4062332A (en) * 1975-11-28 1977-12-13 Cummins Engine Company, Inc. Compression brake for internal combustion engine
US4355605A (en) * 1976-06-01 1982-10-26 Charles E. Robinson Motor brake control method
US4223649A (en) * 1976-06-01 1980-09-23 Robinson Charles E Motor brake control system
US4305353A (en) * 1976-06-01 1981-12-15 Charles E. Robinson Motor brake control system for controlling motor runaway
JPS6048641B2 (en) * 1976-06-11 1985-10-29 株式会社日立製作所 fluid pressure servo valve
US4114643A (en) * 1976-07-02 1978-09-19 Nissan Motor Company, Limited Valve operating mechanism of internal combustion engine
FR2366451A1 (en) * 1976-09-30 1978-04-28 Semt DIESEL ENGINE RAPID PNEUMATIC BRAKING METHOD AND DEVICE
DE2658927A1 (en) * 1976-12-24 1978-07-06 Maschf Augsburg Nuernberg Ag BRAKE DEVICE FOR FOUR-STROKE RECEPTACLE COMBUSTION MACHINES
US4093046A (en) * 1976-12-30 1978-06-06 Cummins Engine Company, Inc. Exhaust braking apparatus
US4138849A (en) * 1977-06-06 1979-02-13 Cummins Engine Company, Inc. Exhaust braking valve
US4158348A (en) * 1977-06-30 1979-06-19 Mason Lloyd R System for retarding engine speed
US4175534A (en) * 1977-07-14 1979-11-27 Edgar R Jordan Valve deactivator for internal combustion engines
US4173209A (en) * 1977-07-14 1979-11-06 Jordan Edgar R Engine control system and valve deactivator thereof
US4164917A (en) * 1977-08-16 1979-08-21 Cummins Engine Company, Inc. Controllable valve tappet for use with dual ramp cam
JPS564818Y2 (en) * 1977-10-26 1981-02-02
US4150640A (en) * 1977-12-20 1979-04-24 Cummins Engine Company, Inc. Fluidic exhaust valve opening system for an engine compression brake
US4201362A (en) * 1978-06-30 1980-05-06 Kabushiki Kaisha Saginomiya Seisakusho Electromagnetic pilot type valve
DE2943819A1 (en) 1978-11-06 1980-05-22 Jacobs Mfg Co ENGINE BRAKE SYSTEM
US4398510A (en) * 1978-11-06 1983-08-16 The Jacobs Manufacturing Company Timing mechanism for engine brake
US4220008A (en) * 1978-12-28 1980-09-02 Cummins Engine Company Exhaust brake modulating control system
US4251051A (en) * 1979-04-19 1981-02-17 The Jacobs Manufacturing Company Solenoid structure having a relatively unrestrained generally flat armature member
US4271796A (en) * 1979-06-11 1981-06-09 The Jacobs Manufacturing Company Pressure relief system for engine brake
US4333430A (en) * 1979-06-15 1982-06-08 Rosquist Von D Engine brake
SE421079B (en) * 1979-10-10 1981-11-23 Nordstjernan Rederi Ab DEVICE FOR REGULATING BRAKE POWER RECOVERY FROM A MULTI-CYLINDER-DIESEL ENGINE
DE3003566A1 (en) * 1980-02-01 1981-08-06 Klöckner-Humboldt-Deutz AG, 5000 Köln BRAKE DEVICE FOR A VALVE CONTROLLED INTERNAL COMBUSTION ENGINE
US4296605A (en) * 1980-02-11 1981-10-27 The Jacobs Manufacturing Company Compression relief retarders for supercharged internal combustion engines
DE3005456A1 (en) * 1980-02-14 1981-08-20 Klöckner-Humboldt-Deutz AG, 5000 Köln BRAKE DEVICE FOR A VEHICLE FOUR-STROKE ENGINE
US4473047A (en) * 1980-02-25 1984-09-25 The Jacobs Mfg. Company Compression release engine brake
US4596271A (en) * 1980-10-02 1986-06-24 Brundage Robert W Fluid pressure device
CA1180639A (en) * 1980-11-12 1985-01-08 Robert W. Brundage Magnetically controlled fluid pressure device
US4367702A (en) * 1981-01-30 1983-01-11 Outboard Marine Corporation Internal combustion engine with automatic compression release
US4395884A (en) * 1981-02-26 1983-08-02 The Jacobs Manufacturing Company Method and apparatus for improved engine braking and operation
US4429532A (en) * 1981-04-21 1984-02-07 The Jacobs Manufacturing Company Apparatus and method for temporarily converting a turbocharged engine to a compressor
US4384558A (en) * 1981-08-03 1983-05-24 Cummins Engine Company, Inc. Engine compression brake employing automatic lash adjustment
US4455977A (en) * 1981-08-31 1984-06-26 Tecumseh Products Company Compression brake system
DE3135650A1 (en) * 1981-09-09 1983-03-17 Robert Bosch Gmbh, 7000 Stuttgart "VALVE CONTROL FOR PISTON PISTON INTERNAL COMBUSTION ENGINES WITH MECHANICAL-HYDRAULIC MOTION TRANSMITTERS"
US4450801A (en) * 1981-11-16 1984-05-29 Cummins Engine Company, Inc. Water pressure activated override for cylinder deactivator
US4399787A (en) * 1981-12-24 1983-08-23 The Jacobs Manufacturing Company Engine retarder hydraulic reset mechanism
US4423712A (en) * 1982-04-28 1984-01-03 The Jacobs Mfg. Company Engine retarder slave piston return mechanism
US4474006A (en) * 1982-09-30 1984-10-02 The Jacobs Mfg. Company Method and apparatus for improved compression release engine retarding in a turbocharged internal combustion engine
US4510900A (en) * 1982-12-09 1985-04-16 The Jacobs Manufacturing Company Hydraulic pulse engine retarder
US4485780A (en) * 1983-05-05 1984-12-04 The Jacobs Mfg. Company Compression release engine retarder
US4494726A (en) * 1983-08-08 1985-01-22 Deere & Company Control valve
FR2552492B1 (en) 1983-09-23 1988-01-15 Alsacienne Constr Meca ELECTRO-HYDRAULIC VALVE CONTROL UNIT FOR AN INTERNAL COMBUSTION ENGINE
US4553732A (en) * 1984-02-13 1985-11-19 Brundage Robert W Solenoid controlled flow valve
US4475500A (en) * 1983-12-28 1984-10-09 Cummins Engine Company, Inc. Automatic lash adjustment for engine compression brake
DE3428626A1 (en) 1984-08-03 1986-02-13 Daimler-Benz Ag, 7000 Stuttgart Four-stroke internal combustion engine
DE3428627A1 (en) * 1984-08-03 1986-02-13 Daimler-Benz Ag, 7000 Stuttgart FOUR-STOCK COMBUSTION ENGINE
ES536974A0 (en) * 1984-10-22 1985-10-16 Ruiz Guinea Jose M INSTALLATION FOR THE USE OF THE KINETIC ENERGY OF A MOTOR VEHICLE
DE3511820A1 (en) * 1985-03-30 1986-10-02 Robert Bosch Gmbh, 7000 Stuttgart VALVE CONTROL DEVICE FOR A PISTON PISTON INTERNAL COMBUSTION ENGINE
US4688384A (en) * 1985-04-15 1987-08-25 The Jacobs Manufacturing Company Braking boost pressure modulator and method
US4655178A (en) * 1985-05-08 1987-04-07 Meneely Vincent A Anti-lash adjuster
JPS6213710A (en) * 1985-07-09 1987-01-22 Kawasaki Heavy Ind Ltd Compression opening device for engine
US4592319A (en) * 1985-08-09 1986-06-03 The Jacobs Manufacturing Company Engine retarding method and apparatus
DE3532549A1 (en) * 1985-09-12 1987-03-19 Bosch Gmbh Robert VALVE CONTROL DEVICE
US4648365A (en) * 1985-11-26 1987-03-10 Cummins Engine Company, Inc. Engine compression braking system for an internal combustion engine
US4664070A (en) * 1985-12-18 1987-05-12 The Jacobs Manufacturing Company Hydro-mechanical overhead for internal combustion engine
US4651687A (en) * 1985-12-20 1987-03-24 Kawasaki Jukogyo Kabushiki Kaisha Automatic compression releasing device for four-cycle engine
US4697558A (en) * 1986-02-18 1987-10-06 Meneely Vincent A Compression relief engine brake
US4898206A (en) * 1986-06-10 1990-02-06 The Jacobs Manufacturing Company Compression release retarder with valve motion modifier
US4706624A (en) * 1986-06-10 1987-11-17 The Jacobs Manufacturing Company Compression release retarder with valve motion modifier
USRE33052E (en) * 1986-06-10 1989-09-12 The Jacobs Manufacturing Company Compression release retarder with valve motion modifier
US4949751A (en) 1986-06-10 1990-08-21 Jacobs Brake Technology Corporation Compression release retarder with valve motion modifier
US4838516A (en) * 1986-06-10 1989-06-13 The Jacobs Manufacturing Company Compression release retarder with valve motion modifier
US4706625A (en) * 1986-08-15 1987-11-17 The Jacobs Manufacturing Company Engine retarder with reset auto-lash mechanism
US4742806A (en) * 1986-09-10 1988-05-10 Tart Jr Earl D Auxiliary engine braking system
AT404288B (en) * 1986-10-30 1998-10-27 Avl Verbrennungskraft Messtech ENGINE BRAKE IN AN INTERNAL COMBUSTION ENGINE FOR MOTOR VEHICLES
US4711210A (en) * 1986-12-29 1987-12-08 Cummins Engine Company, Inc. Compression braking system for an internal combustion engine
JPS63176610A (en) 1987-01-19 1988-07-20 Honda Motor Co Ltd Control device for suction and exhaust valves
US4741307A (en) * 1987-02-17 1988-05-03 Pacific Diesel Brave Co. Apparatus and method for compression release retarding of an engine
JPH0794845B2 (en) * 1987-02-24 1995-10-11 本田技研工業株式会社 Differential pressure actuator
US4794890A (en) * 1987-03-03 1989-01-03 Magnavox Government And Industrial Electronics Company Electromagnetic valve actuator
US4793307A (en) * 1987-06-11 1988-12-27 The Jacobs Manufacturing Company Rocker arm decoupler for two-cycle engine retarder
FR2616481A1 (en) 1987-06-12 1988-12-16 Hamon Francois Internal combustion engine electronic valve-control device and methods of implementation
US4741364A (en) * 1987-06-12 1988-05-03 Deere & Company Pilot-operated valve with load pressure feedback
US4966195A (en) 1987-06-25 1990-10-30 Colt Industries Inc. Transmission pressure regulator
US4823746A (en) * 1987-09-25 1989-04-25 Selwyn Kaplan Engine ignitor with integral compression release valve
JPS6487844A (en) 1987-09-29 1989-03-31 Toyota Motor Corp Engine brake control device
JPH01105025A (en) 1987-10-14 1989-04-21 Tokyo Buhin Kogyo Kk Engine brake device
DE3805288A1 (en) 1988-02-19 1989-08-31 Rexroth Mannesmann Gmbh CONTROL VALVE
US4898128A (en) * 1988-04-07 1990-02-06 Meneely Vincent A Anti-lash adjuster
US4932372A (en) 1988-05-02 1990-06-12 Pacific Diesel Brake Co. Apparatus and method for retarding a turbocharged engine
US4848289A (en) * 1988-05-02 1989-07-18 Pacific Diesel Brake Co. Apparatus and method for retarding an engine
DE3815668A1 (en) * 1988-05-07 1989-11-16 Bosch Gmbh Robert VALVE CONTROL DEVICE WITH SOLENOID VALVE FOR INTERNAL COMBUSTION ENGINES
US4873948A (en) * 1988-06-20 1989-10-17 Magnavox Government And Industrial Electronics Company Pneumatic actuator with solenoid operated control valves
US4852528A (en) * 1988-06-20 1989-08-01 Magnavox Government And Industrial Electronics Company Pneumatic actuator with permanent magnet control valve latching
MX166451B (en) 1988-09-05 1993-01-11 Echeverria Gregorio Jimenez ENGINE BRAKE SYSTEM FOR ALL KINDS OF DIESEL AND PETROL ENGINES
JP2738844B2 (en) 1988-09-14 1998-04-08 ジャトコ株式会社 Exhaust brake control device
US4858956A (en) * 1988-09-22 1989-08-22 Siemens-Bendix Automotive Electronics L.P. High pressure, fast response, pressure balanced, solenoid control valve
JP2757193B2 (en) 1988-11-18 1998-05-25 トヨタ自動車株式会社 Vehicle travel target value setting device
DE3839449A1 (en) 1988-11-23 1990-05-31 Daimler Benz Ag FOUR-STOCK COMBUSTION ENGINE
US4898133A (en) * 1988-12-07 1990-02-06 Kohler Co. Automatic compression release apparatus for an internal combustion engine
JP2707127B2 (en) 1988-12-28 1998-01-28 株式会社いすゞセラミックス研究所 Electromagnetic valve drive
DE3900739A1 (en) 1989-01-12 1990-07-19 Man Nutzfahrzeuge Ag METHOD FOR INCREASING ENGINE BRAKING PERFORMANCE IN FOUR-STROKE PISTON PISTON COMBUSTION ENGINES
DE3904497C1 (en) 1989-02-15 1990-01-25 Man Nutzfahrzeuge Ag, 8000 Muenchen, De
SE466320B (en) 1989-02-15 1992-01-27 Volvo Ab PROCEDURES AND DEVICE FOR ENGINE BRAKING WITH A FIREWORKS ENGINE
JP2610187B2 (en) 1989-04-28 1997-05-14 株式会社いすゞセラミックス研究所 Valve drive
US4936273A (en) 1989-04-28 1990-06-26 Myers Vaughn D Decompression system for diesel engines
DE3914698A1 (en) 1989-05-04 1990-11-08 Daimler Benz Ag METHOD FOR CONTROLLING AN ENGINE BRAKING SYSTEM IN A COMBUSTION ENGINE DRIVING A VEHICLE
US4892068A (en) * 1989-06-09 1990-01-09 Kohler Co. Geared automatic compression release for an internal combustion engine
DE3922884A1 (en) 1989-07-12 1991-01-24 Man Nutzfahrzeuge Ag ENGINE BRAKE FOR AIR COMPRESSING ENGINES
DE3929072A1 (en) 1989-09-01 1991-03-07 Bosch Gmbh Robert VALVE CONTROL DEVICE WITH SOLENOID VALVE FOR INTERNAL COMBUSTION ENGINES
US4982706A (en) 1989-09-01 1991-01-08 Robert Bosch Gmbh Valve control apparatus having a magnet valve for internal combustion engines
JPH086571B2 (en) 1989-09-08 1996-01-24 本田技研工業株式会社 Valve train for internal combustion engine
DE3939934A1 (en) 1989-12-02 1991-06-06 Man Nutzfahrzeuge Ag VALVE CONTROL FOR GAS EXCHANGE VALVES OF INTERNAL COMBUSTION ENGINES
US5000145A (en) 1989-12-05 1991-03-19 Quenneville Raymond N Compression release retarding system
US5121324A (en) 1989-12-21 1992-06-09 Mack Trucks, Inc. Motor vehicle magagement and control system including solenoid actuated fuel injection timing control
US4974495A (en) 1989-12-26 1990-12-04 Magnavox Government And Industrial Electronics Company Electro-hydraulic valve actuator
US5029516A (en) 1989-12-26 1991-07-09 North American Philips Corporation Pneumatically powered valve actuator
DK0441100T3 (en) 1990-02-08 1993-06-01 Sulzer Ag Device for controlling a piston combustion engine exhaust valve
DE4007287A1 (en) 1990-03-08 1991-09-12 Man Nutzfahrzeuge Ag ENGINE BRAKE FOR AIR COMPRESSING ENGINE
JPH03260344A (en) 1990-03-08 1991-11-20 Honda Motor Co Ltd Method for controlling internal combustion engine
US5048480A (en) 1990-03-15 1991-09-17 Jacobs Brake Technology Corporation Variable timing process and mechanism for a compression release engine retarder
US5000280A (en) 1990-04-04 1991-03-19 Honda Giken Kogyo Kabushiki Kaisha Driving wheel slip control system for vehicles
US5191827A (en) 1990-04-12 1993-03-09 Bendix Europe Services Techniques Electrically controlled pressure-regulating system for a hydraulic circuit
JP2527268Y2 (en) 1990-05-11 1997-02-26 三菱重工業株式会社 Valve train for internal combustion engine
US4996957A (en) 1990-06-04 1991-03-05 Jacobs Brake Technology Corporation Control valve for a compression release engine retarder
US5051631A (en) 1990-07-16 1991-09-24 Spx Corporation Electromagnetic solenoid valve with variable force motor
US5022358A (en) 1990-07-24 1991-06-11 North American Philips Corporation Low energy hydraulic actuator
US5022359A (en) 1990-07-24 1991-06-11 North American Philips Corporation Actuator with energy recovery return
US5058538A (en) 1990-07-24 1991-10-22 North American Philips Corporation Hydraulically propelled phneumatically returned valve actuator
US5036810A (en) 1990-08-07 1991-08-06 Jenara Enterprises Ltd. Engine brake and method
US5012778A (en) 1990-09-21 1991-05-07 Jacobs Brake Technology Corporation Externally driven compression release retarder
US5119633A (en) 1990-09-25 1992-06-09 Cummins Engine Company, Inc. Power turbine bypass for improved compression braking
US5215054A (en) 1990-10-22 1993-06-01 Jenara Enterprises Ltd. Valve control apparatus and method
DE4038334C1 (en) 1990-12-01 1991-11-28 Mercedes-Benz Aktiengesellschaft, 7000 Stuttgart, De
US5140953A (en) 1991-01-15 1992-08-25 Fogelberg Henrik C Dual displacement and expansion charge limited regenerative cam engine
DE4102537A1 (en) 1991-01-29 1992-07-30 Man Nutzfahrzeuge Ag EXHAUST VALVE TUNEL FOR AN INTERNAL COMBUSTION ENGINE
US5146754A (en) 1991-02-08 1992-09-15 Jacobs Brake Technology Corp. Exhaust gas diverter for divided volute turbocharger of internal combustion engine
US5117790A (en) 1991-02-19 1992-06-02 Caterpillar Inc. Engine operation using fully flexible valve and injection events
US5105782A (en) 1991-02-27 1992-04-21 Jenara Enterprises Ltd. Compression release brake with variable ratio master and slave cylinder combination
JPH04301108A (en) 1991-03-28 1992-10-23 Aisin Seiki Co Ltd Hydraulic lifter with valve stopping device
US5125371A (en) 1991-04-04 1992-06-30 North American Philips Corporation Spring driven hydraulic actuator
US5127375A (en) 1991-04-04 1992-07-07 Ford Motor Company Hydraulic valve control system for internal combustion engines
US5152260A (en) 1991-04-04 1992-10-06 North American Philips Corporation Highly efficient pneumatically powered hydraulically latched actuator
DE4121435C2 (en) 1991-06-28 1995-10-12 Rexroth Mannesmann Gmbh Engine brake for a multi-cylinder internal combustion engine
JPH05156914A (en) 1991-12-09 1993-06-22 Honda Motor Co Ltd Valve system for internal combustion engine
US5248123A (en) 1991-12-11 1993-09-28 North American Philips Corporation Pilot operated hydraulic valve actuator
US5165375A (en) 1992-01-03 1992-11-24 Jacobs Brake Technology Corporation Master piston for a compression release engine retarder
US5201290A (en) 1992-01-03 1993-04-13 Jacobs Brake Technology Corporation Compression relief engine retarder clip valve
US5161501A (en) 1992-01-03 1992-11-10 Jacobs Brake Technology Corporation Self-clippping slave piston
US5195489A (en) 1992-01-03 1993-03-23 Jacobs Brake Technology Corporation Push rods for pistons in compression release engine retarders
US5190013A (en) 1992-01-10 1993-03-02 Siemens Automotive L.P. Engine intake valve selective deactivation system and method
US5184586A (en) 1992-02-10 1993-02-09 Tecumseh Products Company Mechanical compression release for an internal combustion engine
US5289805A (en) 1992-03-05 1994-03-01 Borg-Warner Automotive Transmission & Engine Components Corporation Self-calibrating variable camshaft timing system
US5224683A (en) 1992-03-10 1993-07-06 North American Philips Corporation Hydraulic actuator with hydraulic springs
US5197422A (en) 1992-03-19 1993-03-30 Briggs & Stratton Corporation Compression release mechanism and method for assembling same
US5183018A (en) 1992-03-24 1993-02-02 Cummins Engine Co., Inc. Master cylinder with two-piece master piston
DE4209775A1 (en) 1992-03-26 1993-09-30 Man Nutzfahrzeuge Ag Device for controlling an exhaust valve in engine braking mode
US5201296A (en) 1992-03-30 1993-04-13 Caterpillar Inc. Control system for an internal combustion engine
US5186141A (en) 1992-05-04 1993-02-16 Jacobs Brake Technology Corporation Engine brake timing control mechanism
IT1257919B (en) 1992-11-27 1996-02-19 Iveco Fiat ELECTRONIC CONTROL SYSTEM OF A VARIABLE GEOMETRY TURBOCHARGER FOR AN ENGINE EQUIPPED WITH A CONTINUOUS BRAKING DEVICE.
US5253619A (en) 1992-12-09 1993-10-19 North American Philips Corporation Hydraulically powered actuator with pneumatic spring and hydraulic latching
US5365916A (en) 1993-06-23 1994-11-22 Jacobs Brake Technology Corporation Compression release engine brake slave piston drive train
US5410882A (en) 1993-08-26 1995-05-02 Jacobs Brake Technology Corporation Compression release engine braking systems
US5357926A (en) 1993-08-26 1994-10-25 Jacobs Brake Technology Corporation Compression release engine brake with selectively reduced engine exhaust noise
US5445128A (en) 1993-08-27 1995-08-29 Detroit Diesel Corporation Method for engine control
US5393276A (en) 1993-10-12 1995-02-28 Cummins Electronics Company, Inc. Method and apparatus for control of engine compression brakes before, during and after an electronically controlled gear shift
US5386809A (en) 1993-10-26 1995-02-07 Cummins Engine Company, Inc. Pressure relief valve for compression engine braking system
US5437156A (en) 1993-11-16 1995-08-01 Jacobs Brake Technology Corporation Apparatus for selectively lowering intake manifold pressure of turbocharged engine during operation of associated compression release engine brake
US5385019A (en) 1994-02-08 1995-01-31 Jacobs Brake Technology Corporation Compression release engine braking methods and apparatus for use with turbocharged engines having intercoolers
US5531192A (en) 1994-08-04 1996-07-02 Caterpillar Inc. Hydraulically actuated valve system
US5479890A (en) 1994-10-07 1996-01-02 Diesel Engine Retarders, Inc. Compression release engine brakes with electronically controlled, multi-coil hydraulic valves
US5495838A (en) 1995-05-12 1996-03-05 Caterpillar Inc. Compression braking system

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2391358A1 (en) * 1977-05-19 1978-12-15 Wallace Murray Corp TURBOCHARGER WITH VARIABLE GEOMETRY TURBINE
US4572114A (en) * 1984-06-01 1986-02-25 The Jacobs Manufacturing Company Process and apparatus for compression release engine retarding producing two compression release events per cylinder per engine cycle
US5121723A (en) * 1991-03-29 1992-06-16 Cummins Electronics Company, Inc. Engine brake control apparatus and method
US5255650A (en) * 1992-06-01 1993-10-26 Caterpillar Inc. Engine braking utilizing unit valve actuation
US5379737A (en) * 1993-08-26 1995-01-10 Jacobs Brake Technology Corporation Electrically controlled timing adjustment for compression release engine brakes

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1362989A3 (en) * 2002-05-14 2007-09-26 Caterpillar Inc. control system and method for variable valve actuation system
EP1362990A3 (en) * 2002-05-14 2007-10-17 Caterpillar Inc. Engine valve actuation system
GB2443419A (en) * 2006-11-06 2008-05-07 Mechadyne Plc Internal combustion engine valve mechanism allowing variable phase compression braking
WO2014055821A1 (en) * 2012-10-05 2014-04-10 Eaton Corporation Hybrid cam-camless variable valve actuation system
US9157339B2 (en) 2012-10-05 2015-10-13 Eaton Corporation Hybrid cam-camless variable valve actuation system
US9611767B2 (en) 2014-09-18 2017-04-04 Jacobs Vehicle Systems, Inc. Lost motion assembly in a valve bridge for use with a valve train comprising a hydraulic lash adjuster

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US5647318A (en) 1997-07-15
DE69629089T2 (en) 2004-04-22
EP0774051B1 (en) 2003-07-16

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