US20070039433A1 - Diamond Tool With A Multi-Tipped Diamond - Google Patents

Diamond Tool With A Multi-Tipped Diamond Download PDF

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Publication number
US20070039433A1
US20070039433A1 US11/551,772 US55177206A US2007039433A1 US 20070039433 A1 US20070039433 A1 US 20070039433A1 US 55177206 A US55177206 A US 55177206A US 2007039433 A1 US2007039433 A1 US 2007039433A1
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Prior art keywords
diamond
tips
tool
approximately
valley
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US11/551,772
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William Bryan
Nelson Sewall
Jeffrey Clements
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3M Innovative Properties Co
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3M Innovative Properties Co
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Priority to US11/551,772 priority Critical patent/US20070039433A1/en
Publication of US20070039433A1 publication Critical patent/US20070039433A1/en
Abandoned legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C59/00Surface shaping of articles, e.g. embossing; Apparatus therefor
    • B29C59/02Surface shaping of articles, e.g. embossing; Apparatus therefor by mechanical means, e.g. pressing
    • B29C59/022Surface shaping of articles, e.g. embossing; Apparatus therefor by mechanical means, e.g. pressing characterised by the disposition or the configuration, e.g. dimensions, of the embossments or the shaping tools therefor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B26HAND CUTTING TOOLS; CUTTING; SEVERING
    • B26DCUTTING; DETAILS COMMON TO MACHINES FOR PERFORATING, PUNCHING, CUTTING-OUT, STAMPING-OUT OR SEVERING
    • B26D3/00Cutting work characterised by the nature of the cut made; Apparatus therefor
    • B26D3/08Making a superficial cut in the surface of the work without removal of material, e.g. scoring, incising
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C59/00Surface shaping of articles, e.g. embossing; Apparatus therefor
    • B29C59/02Surface shaping of articles, e.g. embossing; Apparatus therefor by mechanical means, e.g. pressing
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C59/00Surface shaping of articles, e.g. embossing; Apparatus therefor
    • B29C59/02Surface shaping of articles, e.g. embossing; Apparatus therefor by mechanical means, e.g. pressing
    • B29C59/04Surface shaping of articles, e.g. embossing; Apparatus therefor by mechanical means, e.g. pressing using rollers or endless belts
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T29/00Metal working
    • Y10T29/49Method of mechanical manufacture
    • Y10T29/49995Shaping one-piece blank by removing material
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T407/00Cutters, for shaping
    • Y10T407/23Cutters, for shaping including tool having plural alternatively usable cutting edges
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T407/00Cutters, for shaping
    • Y10T407/27Cutters, for shaping comprising tool of specific chemical composition
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T82/00Turning
    • Y10T82/14Axial pattern
    • Y10T82/149Profiled cutter

Definitions

  • the invention relates to diamond machining and the creation of diamond tools used in diamond machining.
  • Diamond machining techniques can be used to create a wide variety of work pieces such as microreplication tools.
  • Microreplication tools are commonly used for extrusion processes or injection molding processes to create microreplicated structures.
  • the microreplicated structures may comprise optical films, mechanical fasteners having self-mating profiles, or any molded or extruded parts having microreplicated features of relatively small dimensions, such as dimensions less than 1000 microns.
  • Microreplication tools include casting belts, casting rollers, injection molds, extrusion or embossing tools, and the like. Microreplication tools are often created by a diamond machining process in which a diamond tool is used to cut grooves or other features into the microreplication tool. The process of creating a microreplication tool using a diamond tool can be costly and time consuming.
  • a number of techniques for creating the diamond tool used to create the microreplication tool have also been developed. For example, grinding or lapping processes are often used to create precision shaped diamond tools. However, the range of profiles and shapes that can be formed by grinding and lapping processes is limited.
  • the invention is directed to diamond tools that include a multi-tipped diamond for use in creating microreplication tools or other work pieces.
  • the multiple tips of the diamond tool can be used to simultaneously create multiple grooves or other features, in a microreplication tool.
  • the diamond tool may include a mounting structure such as a tool shank, and a multi-tipped diamond mounted in the mounting structure.
  • the different tips of the diamond may correspond to different grooves to be created in the microreplication tool.
  • the creation of the microreplication tool may be improved or simplified.
  • the diamond has multiple tips, fewer cutting passes of the diamond may be needed to cut the grooves in the microreplication tool, which can reduce tooling costs.
  • the number of passes required to cut the grooves in the microreplication tool can be reduced by one-half.
  • variations between individually cut grooves in the microreplication tool can be reduced relative to microreplication tools having grooves cut by multiple passes of a single tipped diamond. In this manner, the quality of the microreplication tool can be improved. Improving the quality, and reducing the time and costs associated with the creation of the microreplication tool, in turn, may effectively reduce the costs associated with the ultimate creation of microreplicated structures.
  • FIG. 1 is a top view of a two-tipped ion beam milled diamond mounted in a mounting structure.
  • FIGS. 2A and 2B are perspective views of a two-tipped ion beam milled diamond according to one embodiment of the invention.
  • FIG. 3 is a conceptual perspective view of a two-tipped diamond tool simultaneously cutting two grooves during the creation of a microreplication tool.
  • FIGS. 4-7 are top views of two-tipped ion beam milled diamonds according to various embodiments of the invention.
  • FIGS. 8-12 are various cross-sectional top views illustrating a two-tipped diamond cutting grooves into a work piece, and the resultant grooves and protrusions that can be formed in the work piece.
  • FIG. 13 illustrates a technique that may be used to simplify the creation of a two-tipped diamond.
  • FIG. 14 is a top view of a multi-tipped ion beam milled diamond according to another embodiment.
  • FIG. 15 illustrates a technique that may be used to simplify the creation of a multi-tipped diamond like that illustrated in FIG. 14 .
  • FIG. 16 is a perspective view of a two-tipped ion beam milled diamond similar to FIG. 2B .
  • FIGS. 17-24 are additional cross-sectional top views illustrating various multi-tipped ion beam milled diamonds according to various embodiments of the invention.
  • the invention is directed to diamond tools that include a multi-tipped diamond for use in creating microreplication tools or other work pieces.
  • the diamond tool can be used to simultaneously cut a plurality of grooves during the creation of a microreplication tool.
  • the cutting time associated with the creation of a microreplication tool can be reduced. In this manner, the production cycle associated with the ultimate creation of microreplication structures can be simplified.
  • the diamond tool may include a mounting structure such as a tool shank, and a multi-tipped diamond mounted in the mounting structure, wherein the different tips of the diamond correspond to different grooves to be created in the microreplication tool.
  • the tips can be formed using focused ion beam milling processes.
  • the number of tips formed in the multi-tipped diamond may vary for different embodiments. For example, in some cases, two tips are formed on a diamond, and in other cases, a larger number of tips are formed on the diamond.
  • Various shapes and sizes of the tips are also described, which may be useful in the creation of various different microreplication tools. Focused ion beam milling processes can be used to create or perfect the desired shapes of the diamond tips.
  • the creation of multiple tips on the same diamond can improve and simplify the creation of microreplication tools by reducing the number of cutting passes of the diamond needed to create the grooves on the microreplication tool. Furthermore, by using the same diamond to define multiple grooves to be cut in the microreplication tool, variations between individually cut grooves in the microreplication tool can be reduced, which can improve the quality of the microreplication tool. All of these factors can effectively reduce the costs associated with the ultimate creation of microreplicated structures.
  • FIG. 1 is a top view of a tool 10 that includes a two-tipped ion beam milled diamond 12 mounted in a mounting structure 14 .
  • Mounting structure 14 may comprise a tool shank or other metallic structure or composite for holding diamond 12 .
  • Diamond 12 can be secured within mounting structure 14 via brazing, soldering, an adhesive, or any other securing mechanism such as one or more bolts or screws.
  • Mounting structure 14 may have a shape that allows tool 10 to be inserted into an apparatus of a diamond tooling machine that is used to cut grooves or other features into a microreplication tool.
  • the diamond tooling machine may be a diamond turning machine configured for plunge cutting in which the diamond passes into a moving work piece to cut grooves in the work piece.
  • the diamond tooling machine may be a diamond turning machine configured for fly-cutting in which the diamond is rotated about an axis in proximity to a work piece to cut grooves or other features in the work piece.
  • Diamond 12 defines multiple tips 16 .
  • Each tip 16 defines a separate cutting mechanism that corresponds to the creation of a distinct feature of a work piece such as a groove in a microreplication tool being created.
  • diamond 12 includes two tips 16 A and 16 B, although any number of tips may be formed for various embodiments. Tips 16 A and 16 B are adjacent to one another, and form a valley 17 between the tips. Focused ion beam milling processes can be used to form tips 16 A and 16 B, and may also be used to form valley 17 such that valley 17 defines characteristics needed for effective diamond machining.
  • focused ion beam milling can be used to ensure that inner surfaces 18 A and 18 B of tips 16 A and 16 B meet along a common axis 19 to form a bottom of valley 17 .
  • focused ion beam milling can be used to form features in the valley 17 , such as a concave or convex arc ellipses, parabolas, mathematically defined surface patterns, or random or pseudo-random patterns.
  • valley 17 can define a protrusion to be created in a microreplication tool.
  • valley 17 may define a concave or convex arc having a radius defined relative to an external reference point, or may define an angle between the adjacent surfaces 18 A and 18 B.
  • valley 17 could also be formed.
  • the grooves and protrusions created in the microreplication tool may need to meet precise specifications so that the microreplication tool is effective in creating microreplicated structures.
  • the multiple tips 17 are formed on a single diamond, alignment issues associated with the use of separate diamonds in a single tool can be avoided.
  • FIGS. 2A and 2B are perspective views of a two-tipped ion beam milled diamond 12 according to one embodiment of the invention.
  • diamond 12 may define a thickness X.
  • a bottom of valley 17 may extend a substantial distance Y along the thickness X.
  • Y may be less than or equal to X.
  • a top surface of diamond 12 may be tapered along the distance Y, or alternatively may define a constant heights.
  • the thickness X may be approximately between 0.5 millimeters and 2 millimeters and the distance Y may be approximately between 0.001 millimeters and 0.5 millimeters, although the invention is not necessarily limited in those respects.
  • FIG. 3 is a conceptual perspective view of a two-tipped diamond tool 10 used to simultaneously cut two grooves during the creation of a microreplication tool 32 .
  • microreplication tool 32 comprises a casting roll, although other microreplication tools such as casting belts, injection molds, extrusion or embossing tools, or other work pieces could also be created using diamond tool 10 .
  • Diamond tool 10 may be secured in a diamond tooling machine 34 that positions the diamond tool 10 relative to microreplication tool 32 , and moves the diamond tool 10 , e.g., in lateral directions (as illustrated by the arrows) relative to the microreplication tool 32 .
  • microreplication tool 32 may be rotated about an axis.
  • Diamond tooling machine 34 may be configured to pass the diamond tool 10 into a rotating microreplication tool 32 via plunge or thread cutting techniques to cut grooves in the microreplication tool 32 .
  • diamond tooling machine 34 may be configured for fly-cutting in which the diamond tool 10 is rotated about an axis in proximity to the microreplication tool 32 to cut grooves or other features in the microreplication tool 32 .
  • Diamond tooling machine 34 may also be configured for scribing or ruling, in which diamond tool 10 is displaced through a work piece very slowly. In any case, grooves can be cut, and protrusions can be formed on the work piece.
  • the formed grooves and protrusions may define the ultimate form of microreplicated structures created using the microreplication tool 32 , for example, during an extrusion process.
  • the formed grooves and protrusions may form features by displacement of material in work piece other than a microreplication tool.
  • diamond tool 10 implements a diamond having multiple tips, fewer passes of the diamond tool are needed to cut the grooves on the microreplication tool. This can reduce production costs and speed the production cycle associated with creation of microreplication tools. Creation of a work piece can take hours if not days in some cases. Incorporation of two or more tips within diamond tool 10 for simultaneous use can reduce the production cycle to a fraction of that time. For example, if the diamond includes two tips 16 (as illustrated in FIG. 3 ), the number of passes required to cut grooves in the microreplication tool 32 can be reduced by one-half relative to a diamond tool that includes a single-tipped diamond. Additional tips 16 may add further benefits in a similar manner.
  • the same diamond defines multiple grooves to be cut in the microreplication tool 32 , variations between individually cut grooves in the microreplication tool 32 can be reduced, which can improve the quality of the microreplication tool 32 . Improving the quality, and reducing costs associated with the creation of the microreplication tool 32 , in turn, may effectively reduce the costs associated with the ultimate creation of microreplicated structures.
  • depth variations between adjacent grooves may be formed.
  • the difference in depth is sometimes referred to as “clean-up,” because additional modifications to the microreplication tool may be needed to adjust the depths of grooves and heights of protrusions created on the microreplication tool.
  • This clean-up can be reduced or avoided when a multi-tipped diamond is used.
  • the depth of adjacent grooves created in the microreplication tool may be defined by adjacent tips of the multi-tipped diamond.
  • the height of the adjacent tips are defined to be substantially the same, the depth of adjacent grooves created in the microreplication tool may also be the same. Avoiding or reducing clean-up can also decrease time and cost associated with the creation of microreplicated structures.
  • FIGS. 4-7 are top views of two-tipped ion beam milled diamonds according to various embodiments of the invention.
  • the tips may be formed to have any of a wide variety of shapes and sizes.
  • tips 16 C and 16 D may define substantially rectangular shapes.
  • a bottom of valley 17 C may be a flat surface parallel to a top surface of tips 16 C and 16 D.
  • valley 17 C may define a non-flat surface such as a concave or convex arc.
  • tips 16 E and 16 F may define tapered shapes with flat tops.
  • the side walls defined by tips 16 E and 16 F may taper such that tips 16 E and 16 F define pyramid-like shapes with flat tops.
  • the bottom of valley 17 E may also be a flat surface parallel to a top surface of tips 16 E and 16 F.
  • the bottom of valley 17 E or the tops of tips 16 E and 16 F may be non-flat.
  • tips 16 G and 16 H define undercut side walls.
  • the bottom of valley 17 G formed by neighboring tips 16 G and 16 H defines an acute angle relative to the side walls adjacent the bottom of valley 17 G.
  • the tips 16 may also be subject to a wide variety of sizes.
  • the sizes of the tips may be defined by one or more variables as illustrated in FIG. 7 , including the height (H), the width (W), and the pitch (P).
  • the height (H) refers the maximum distance from the bottom of the valley to the top of the tip.
  • the width (W) may be defined as the average width, or as labeled in FIG. 7 , the maximum width of a tip.
  • the pitch (P) refers to the distance between adjacent tips.
  • Another quantity that can be used to define the size of the tips is referred to as the aspect ratio.
  • the aspect ratio is the ratio of height (H) to width (W).
  • the height (H) and/or the width (W) can be formed to be less than approximately 500 microns, less than approximately 200 microns, less than approximately 100 microns, less than approximately 50 microns, less than approximately 10 microns, less than approximately 1.0 micron, or less than approximately 0.1 micron.
  • the pitch may be defined to be less approximately 500 microns, less than approximately 200 microns, less than approximately 100 microns, less than approximately 50 microns, less than approximately 10 microns, less than approximately 1.0 micron, or less than approximately 0.1 micron.
  • the aspect ratio may be defined to be greater than approximately 1:5, greater than approximately 1:2, greater than approximately 1:1, greater than approximately 2:1, or greater than approximately 5:1. Larger or smaller aspect ratios may also be achieved using focused ion beam milling. These different shapes and sizes may be advantageous for various applications.
  • Focused ion beam milling refers to a process in which ions such as gallium ions are accelerated toward the diamond in order to mill away atoms of the diamond (sometimes referred to as ablation).
  • the acceleration of gallium ions may remove atoms from the diamond on an atom by atom basis.
  • Vapor enhancing techniques using water vapors may also be used to improve the focused ion beam milling process.
  • One suitable focused ion beam milling machine is the Micron model 9500, commercially available from FEI Inc. of Portland Oreg.
  • it has been experimentally determined that focused ion beam milling processes can be used to create multi-tipped diamonds.
  • features to be created in a microreplication tool can be defined.
  • focused ion beam milling can be performed to create a diamond having multiple tips that correspond to the features to be created.
  • the specification can then be used to perform focused ion beam milling to create a diamond according to the specification.
  • One exemplary provider of focused ion milling services that may be used to create one or more ion beam milled diamonds is Materials Analytical Services of Raleigh, N.C.
  • Focused ion beam milling generally is very expensive. Therefore, to reduce the costs associated with the creation of a multi-tipped diamond, it is desirable to initially process the diamond to be ion beam milled prior to submitting the diamond to the focused ion beam milling process. For example, less expensive techniques such as lapping, grinding, or wire sawing techniques may be used to mill away significant portions of the diamond.
  • the focused ion beam milling process may be needed to achieve one or more of the dimensions or features listed above. Still, by initially processing the diamond prior to focused ion beam milling, the amount of focused ion beam milling time required to create the final ion beam milled diamond can be reduced.
  • Lapping refers to a process of removing material from the diamond using a loose abrasive
  • grinding refers to a process in which material is removed from the diamond using an abrasive that is fixed in a medium or substrate.
  • FIG. 8 is a cross-sectional top view illustrating a two-tipped diamond 80 cutting grooves into a work piece 82 .
  • FIG. 9 is another cross-sectional top view of work piece 82 , illustrating the grooves 91 A and 91 B as well as protrusion 92 that results from the cut illustrated in FIG. 8 .
  • protrusion 92 is defined by the valley formed between neighboring tips of diamond 80 .
  • protrusion 92 may be a distance (D) from an outer surface of work piece 82 .
  • D distance
  • an amount of material corresponding to distance D is removed from work piece to define the top of protrusion 92 . This may result in more uniformity between protrusions formed on work piece 82 relative to protrusions created using a single tipped diamond.
  • clean-up of protrusion 92 may be reduced or avoided.
  • Grooves 91 A and 91 B also have substantially the same depth relative to one another.
  • depth variations between adjacent grooves may be formed.
  • clean-up associated with depth variations between adjacent grooves may also be reduced or avoided.
  • FIGS. 10 and 11 are additional cross-sectional top views illustrating the two-tipped diamond 80 cutting subsequent grooves into work piece 82 ( FIG. 10 ) and the subsequent grooves and protrusions that results from the cut ( FIG. 11 ).
  • the cut illustrated in FIG. 10 may be subsequent to the cut illustrated in FIG. 8 .
  • clean-up associated with protrusion 102 may be necessary to an extent of distance D. However, clean-up on the other protrusions 92 and 104 may be reduced or avoided.
  • protrusions 92 and 104 are similarly defined by work piece 82 , the amount of clean-up required on protrusion 102 can be more easily quantified by distance D, which corresponds to the same amount of material removed from the top of protrusions 92 and 104 during the respective cuts by diamond 80 .
  • distance D corresponds to the same amount of material removed from the top of protrusions 92 and 104 during the respective cuts by diamond 80 .
  • more precise features can be created in work piece 82 and the required amount of clean-up may be reduced.
  • FIG. 12 illustrates an alternative to the cutting technique illustrated in FIG. 10 .
  • FIG. 12 is a cross-sectional top view illustrating the two-tipped diamond 80 making a subsequent cut to that illustrated in FIG. 8 .
  • the subsequent cut overlaps with the previous cut.
  • the left most tip of diamond 80 follows groove 92 ( FIG. 9 ), and the right most tip of diamond 80 cuts another groove.
  • Such a cutting technique may result in more precise similarities between created features in the work piece, and clean-up may be reduced or avoided.
  • a large number of tips may be formed on a diamond, but only one tip may overlap during subsequent cutting passes.
  • the overlapping tip may be used to precisely position the diamond relative to the work piece such that the features cut into the work piece have substantial similarity in terms of heights and depths.
  • FIG. 13 illustrates one technique that may be used to simplify the creation of a two-tipped diamond.
  • Diamond 130 may be initially processed by lapping edges 131 A and 131 B. Also, a wire saw can be used to create an initial valley 132 . These simple processing steps can significantly reduce the amount of focused ion beam milling time required to create the final ion beam milled diamond.
  • diamond 130 can be sent to an focused ion beam milling process (as conceptually represented by the arrows of FIG. 13 ).
  • the focused ion beam milling process can be used to accelerate gallium ions at diamond 130 in order to mill away diamond atoms to ultimately define the multi-tipped ion beam milled diamond 10 .
  • a multi-tipped diamond may include any number of tips, and the tips may assume a wide variety of shapes and sizes.
  • FIG. 14 is a top view illustrating a multi-tipped diamond.
  • multi-tipped diamond 140 defines nine separate tips.
  • the tips of a diamond like that illustrated in FIG. 14 may define widths (W) of approximately 0.1 micron, pitches (P) of approximately 0.2 micron, heights (H) of approximately 0.2 micron and an aspect ration (H:W) of approximately 2:1.
  • W widths
  • P pitches
  • H heights
  • H:W aspect ration
  • diamond 140 may extend a distance in a thickness direction, and the valleys of diamond may also extend a distance in the thickness direction.
  • FIG. 15 illustrates a technique that may be used to simplify the creation of a multi-tipped diamond like that illustrated in FIG. 14 .
  • diamond 150 may be initially processed by lapping or grinding sides 151 A and 151 B in order to define one relatively wide protrusion 152 .
  • diamond 150 can be sent to an focused ion beam milling process (as conceptually represented by the arrows of FIG. 15 ).
  • the focused ion beam milling process can then be applied to accelerate gallium ions at diamond 150 in order to mill away diamond atoms to ultimately define the multi-tipped ion beam milled diamond 140 according to specification.
  • FIG. 16 is a perspective view of a two-tipped ion beam milled diamond similar to FIG. 2B .
  • diamond 12 may define five specifically defined surfaces (S 1 -S 5 ).
  • Surfaces S 1 , S 2 and S 3 may be created by grinding or lapping techniques, and surfaces S 4 and S 5 may be created by focused ion beam milling techniques.
  • FIGS. 17-24 are additional cross-sectional top views illustrating various multi-tipped ion beam milled diamonds according to various embodiments of the invention.
  • a diamond may include tips of different shapes and sizes.
  • tip 171 may be used to create one type of feature in a work piece
  • tips 172 may be used to create another type of feature in a work piece.
  • a height of tip 171 may be more than approximately 5-times larger than the height of tips 172 , more than approximately 10-times larger, or more than approximately 20-times larger.
  • a diamond may include multiple relatively large tips 181 A and 181 B, separated by relatively small tips 182 .
  • tips 182 define a periodic sinusoidal function.
  • tips 191 ay define a periodic sinusoidal function. Any other mathematical function, random or pseudo-random surface may also be formed.
  • FIG. 20 shows a slight variation of a two-tipped diamond in which an outer surface 203 of tip 201 defines an angle that is different than that of an inner surface 202 .
  • FIG. 21 illustrates a diamond in which tips 211 are formed on a side of tip 212 .
  • FIG. 22 illustrates a diamond in which tips 221 and 222 define variable different heights. Variable valleys, variable inner surface wall angles, and/or variable pitch spacing between adjacent tips may also be defined.
  • FIG. 23 illustrates a diamond in which tips define a valley having a convex radius (R).
  • FIG. 24 illustrates a diamond in which multiple periodic sinusoidal like tips follow an arc-shaped surface of the diamond.
  • multi-tipped ion beam milled diamonds have been described for use in diamond tooling machines. Nevertheless, various modifications can be made to the embodiments described above without departing from the scope of the following claims.
  • the multi-tipped diamond may be used to cut grooves or other features into other types of work pieces, e.g., work pieces other than microreplication tools. Accordingly, other implementations and embodiments are within the scope of the following claims.

Abstract

In one embodiment, a tool used for creating grooves in a microreplication tool is described. The tool includes a mounting structure and a multi-tipped diamond mounted in the mounting structure. The different tips of the diamond may correspond to different grooves to be created in the microreplication tool. In this manner, the creation of a microreplication tool using a diamond can be simplified and/or improved.

Description

    CROSS REFERENCE TO RELATED APPLICATIONS
  • This application is a divisional of U.S. Ser. No. 10/159,925, filed on May 29, 2002, now allowed, the disclosure of which is herein incorporated by reference.
  • FIELD
  • The invention relates to diamond machining and the creation of diamond tools used in diamond machining.
  • BACKGROUND
  • Diamond machining techniques can be used to create a wide variety of work pieces such as microreplication tools. Microreplication tools are commonly used for extrusion processes or injection molding processes to create microreplicated structures. The microreplicated structures may comprise optical films, mechanical fasteners having self-mating profiles, or any molded or extruded parts having microreplicated features of relatively small dimensions, such as dimensions less than 1000 microns.
  • Microreplication tools include casting belts, casting rollers, injection molds, extrusion or embossing tools, and the like. Microreplication tools are often created by a diamond machining process in which a diamond tool is used to cut grooves or other features into the microreplication tool. The process of creating a microreplication tool using a diamond tool can be costly and time consuming.
  • A number of techniques for creating the diamond tool used to create the microreplication tool have also been developed. For example, grinding or lapping processes are often used to create precision shaped diamond tools. However, the range of profiles and shapes that can be formed by grinding and lapping processes is limited.
  • SUMMARY
  • In general, the invention is directed to diamond tools that include a multi-tipped diamond for use in creating microreplication tools or other work pieces. The multiple tips of the diamond tool can be used to simultaneously create multiple grooves or other features, in a microreplication tool. The diamond tool may include a mounting structure such as a tool shank, and a multi-tipped diamond mounted in the mounting structure. The different tips of the diamond may correspond to different grooves to be created in the microreplication tool.
  • By creating multiple tips on the same diamond, the creation of the microreplication tool may be improved or simplified. In particular, since the diamond has multiple tips, fewer cutting passes of the diamond may be needed to cut the grooves in the microreplication tool, which can reduce tooling costs. For example, if the diamond includes two tips, the number of passes required to cut the grooves in the microreplication tool can be reduced by one-half. In addition, if the same diamond defines multiple grooves to be cut in the microreplication tool, variations between individually cut grooves in the microreplication tool can be reduced relative to microreplication tools having grooves cut by multiple passes of a single tipped diamond. In this manner, the quality of the microreplication tool can be improved. Improving the quality, and reducing the time and costs associated with the creation of the microreplication tool, in turn, may effectively reduce the costs associated with the ultimate creation of microreplicated structures.
  • Additional details of these and other embodiments are set forth in the accompanying drawings and the description below. Other features, objects and advantages will become apparent from the description and drawings, and from the claims.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 is a top view of a two-tipped ion beam milled diamond mounted in a mounting structure.
  • FIGS. 2A and 2B are perspective views of a two-tipped ion beam milled diamond according to one embodiment of the invention.
  • FIG. 3 is a conceptual perspective view of a two-tipped diamond tool simultaneously cutting two grooves during the creation of a microreplication tool.
  • FIGS. 4-7 are top views of two-tipped ion beam milled diamonds according to various embodiments of the invention.
  • FIGS. 8-12 are various cross-sectional top views illustrating a two-tipped diamond cutting grooves into a work piece, and the resultant grooves and protrusions that can be formed in the work piece.
  • FIG. 13 illustrates a technique that may be used to simplify the creation of a two-tipped diamond.
  • FIG. 14 is a top view of a multi-tipped ion beam milled diamond according to another embodiment.
  • FIG. 15 illustrates a technique that may be used to simplify the creation of a multi-tipped diamond like that illustrated in FIG. 14.
  • FIG. 16 is a perspective view of a two-tipped ion beam milled diamond similar to FIG. 2B.
  • FIGS. 17-24 are additional cross-sectional top views illustrating various multi-tipped ion beam milled diamonds according to various embodiments of the invention.
  • DETAILED DESCRIPTION
  • The invention is directed to diamond tools that include a multi-tipped diamond for use in creating microreplication tools or other work pieces. In particular, the diamond tool can be used to simultaneously cut a plurality of grooves during the creation of a microreplication tool. Thus, the cutting time associated with the creation of a microreplication tool can be reduced. In this manner, the production cycle associated with the ultimate creation of microreplication structures can be simplified.
  • The diamond tool may include a mounting structure such as a tool shank, and a multi-tipped diamond mounted in the mounting structure, wherein the different tips of the diamond correspond to different grooves to be created in the microreplication tool. The tips can be formed using focused ion beam milling processes. The number of tips formed in the multi-tipped diamond may vary for different embodiments. For example, in some cases, two tips are formed on a diamond, and in other cases, a larger number of tips are formed on the diamond. Various shapes and sizes of the tips are also described, which may be useful in the creation of various different microreplication tools. Focused ion beam milling processes can be used to create or perfect the desired shapes of the diamond tips.
  • In addition, processes for simplifying the creation of multi-tipped diamonds are also described. As mentioned, focused ion beam milling processes may be used to form the multiple tips. However, because of high costs generally associated with focused ion beam milling, it may be desirable to initially process the diamond using less costly techniques such as grinding, lapping, or wire sawing techniques. Then, the focused ion beam milling process can be used to perfect the shapes of the tips, and to perfect the shape of valleys formed between adjacent tips. By reducing the amount of focused ion beam milling needed to create the desired shape of the tips, costs can be reduced.
  • In general, the creation of multiple tips on the same diamond can improve and simplify the creation of microreplication tools by reducing the number of cutting passes of the diamond needed to create the grooves on the microreplication tool. Furthermore, by using the same diamond to define multiple grooves to be cut in the microreplication tool, variations between individually cut grooves in the microreplication tool can be reduced, which can improve the quality of the microreplication tool. All of these factors can effectively reduce the costs associated with the ultimate creation of microreplicated structures.
  • FIG. 1 is a top view of a tool 10 that includes a two-tipped ion beam milled diamond 12 mounted in a mounting structure 14. Mounting structure 14 may comprise a tool shank or other metallic structure or composite for holding diamond 12. Diamond 12 can be secured within mounting structure 14 via brazing, soldering, an adhesive, or any other securing mechanism such as one or more bolts or screws. Mounting structure 14 may have a shape that allows tool 10 to be inserted into an apparatus of a diamond tooling machine that is used to cut grooves or other features into a microreplication tool. By way of example, the diamond tooling machine may be a diamond turning machine configured for plunge cutting in which the diamond passes into a moving work piece to cut grooves in the work piece. Alternatively the diamond tooling machine may be a diamond turning machine configured for fly-cutting in which the diamond is rotated about an axis in proximity to a work piece to cut grooves or other features in the work piece.
  • Diamond 12 defines multiple tips 16. Each tip 16 defines a separate cutting mechanism that corresponds to the creation of a distinct feature of a work piece such as a groove in a microreplication tool being created. In the embodiment illustrated in FIG. 1, diamond 12 includes two tips 16A and 16B, although any number of tips may be formed for various embodiments. Tips 16A and 16B are adjacent to one another, and form a valley 17 between the tips. Focused ion beam milling processes can be used to form tips 16A and 16B, and may also be used to form valley 17 such that valley 17 defines characteristics needed for effective diamond machining. For example, focused ion beam milling can be used to ensure that inner surfaces 18A and 18B of tips 16A and 16B meet along a common axis 19 to form a bottom of valley 17. Also, focused ion beam milling can be used to form features in the valley 17, such as a concave or convex arc ellipses, parabolas, mathematically defined surface patterns, or random or pseudo-random patterns.
  • Precise creation of valley 17 can be very important because valley 17 can define a protrusion to be created in a microreplication tool. For example, valley 17 may define a concave or convex arc having a radius defined relative to an external reference point, or may define an angle between the adjacent surfaces 18A and 18B. A wide variety of other shapes of valley 17 could also be formed. In any case, the grooves and protrusions created in the microreplication tool may need to meet precise specifications so that the microreplication tool is effective in creating microreplicated structures. Additionally, because the multiple tips 17 are formed on a single diamond, alignment issues associated with the use of separate diamonds in a single tool can be avoided.
  • FIGS. 2A and 2B are perspective views of a two-tipped ion beam milled diamond 12 according to one embodiment of the invention. As shown, diamond 12 may define a thickness X. A bottom of valley 17 may extend a substantial distance Y along the thickness X. Y may be less than or equal to X. As illustrated, a top surface of diamond 12 may be tapered along the distance Y, or alternatively may define a constant heights. By way of example, the thickness X may be approximately between 0.5 millimeters and 2 millimeters and the distance Y may be approximately between 0.001 millimeters and 0.5 millimeters, although the invention is not necessarily limited in those respects.
  • FIG. 3 is a conceptual perspective view of a two-tipped diamond tool 10 used to simultaneously cut two grooves during the creation of a microreplication tool 32. In the example of FIG. 3, microreplication tool 32 comprises a casting roll, although other microreplication tools such as casting belts, injection molds, extrusion or embossing tools, or other work pieces could also be created using diamond tool 10. Diamond tool 10 may be secured in a diamond tooling machine 34 that positions the diamond tool 10 relative to microreplication tool 32, and moves the diamond tool 10, e.g., in lateral directions (as illustrated by the arrows) relative to the microreplication tool 32. At the same time, microreplication tool 32 may be rotated about an axis. Diamond tooling machine 34 may be configured to pass the diamond tool 10 into a rotating microreplication tool 32 via plunge or thread cutting techniques to cut grooves in the microreplication tool 32. Alternatively, diamond tooling machine 34 may be configured for fly-cutting in which the diamond tool 10 is rotated about an axis in proximity to the microreplication tool 32 to cut grooves or other features in the microreplication tool 32. Diamond tooling machine 34 may also be configured for scribing or ruling, in which diamond tool 10 is displaced through a work piece very slowly. In any case, grooves can be cut, and protrusions can be formed on the work piece. The formed grooves and protrusions may define the ultimate form of microreplicated structures created using the microreplication tool 32, for example, during an extrusion process. Alternatively, the formed grooves and protrusions may form features by displacement of material in work piece other than a microreplication tool.
  • Because diamond tool 10 implements a diamond having multiple tips, fewer passes of the diamond tool are needed to cut the grooves on the microreplication tool. This can reduce production costs and speed the production cycle associated with creation of microreplication tools. Creation of a work piece can take hours if not days in some cases. Incorporation of two or more tips within diamond tool 10 for simultaneous use can reduce the production cycle to a fraction of that time. For example, if the diamond includes two tips 16 (as illustrated in FIG. 3), the number of passes required to cut grooves in the microreplication tool 32 can be reduced by one-half relative to a diamond tool that includes a single-tipped diamond. Additional tips 16 may add further benefits in a similar manner. Also, because the same diamond defines multiple grooves to be cut in the microreplication tool 32, variations between individually cut grooves in the microreplication tool 32 can be reduced, which can improve the quality of the microreplication tool 32. Improving the quality, and reducing costs associated with the creation of the microreplication tool 32, in turn, may effectively reduce the costs associated with the ultimate creation of microreplicated structures.
  • In contrast, when a single tipped diamond is used to create grooves on a microreplication tool, depth variations between adjacent grooves may be formed. The difference in depth is sometimes referred to as “clean-up,” because additional modifications to the microreplication tool may be needed to adjust the depths of grooves and heights of protrusions created on the microreplication tool. This clean-up can be reduced or avoided when a multi-tipped diamond is used. In that case, the depth of adjacent grooves created in the microreplication tool may be defined by adjacent tips of the multi-tipped diamond. Thus, if the height of the adjacent tips are defined to be substantially the same, the depth of adjacent grooves created in the microreplication tool may also be the same. Avoiding or reducing clean-up can also decrease time and cost associated with the creation of microreplicated structures.
  • FIGS. 4-7 are top views of two-tipped ion beam milled diamonds according to various embodiments of the invention. As can be appreciated by the examples of FIGS. 4-7, the tips may be formed to have any of a wide variety of shapes and sizes. For example, as shown in FIG. 4, tips 16C and 16D may define substantially rectangular shapes. In that case, a bottom of valley 17C may be a flat surface parallel to a top surface of tips 16C and 16D. Alternatively, valley 17C may define a non-flat surface such as a concave or convex arc.
  • As shown in FIG. 5, tips 16E and 16F may define tapered shapes with flat tops. In that case, the side walls defined by tips 16E and 16F may taper such that tips 16E and 16F define pyramid-like shapes with flat tops. The bottom of valley 17E may also be a flat surface parallel to a top surface of tips 16E and 16F. Alternatively, the bottom of valley 17E or the tops of tips 16E and 16F may be non-flat.
  • As shown in FIG. 6, tips 16G and 16H define undercut side walls. In other words, the bottom of valley 17G formed by neighboring tips 16G and 16H defines an acute angle relative to the side walls adjacent the bottom of valley 17G. These and other formations of tips 16 may be desirable for various applications.
  • The tips 16 may also be subject to a wide variety of sizes. The sizes of the tips may be defined by one or more variables as illustrated in FIG. 7, including the height (H), the width (W), and the pitch (P). The height (H) refers the maximum distance from the bottom of the valley to the top of the tip. The width (W) may be defined as the average width, or as labeled in FIG. 7, the maximum width of a tip. The pitch (P) refers to the distance between adjacent tips. Another quantity that can be used to define the size of the tips is referred to as the aspect ratio. The aspect ratio is the ratio of height (H) to width (W). Experimental diamond tools created by focused ion beam milling processes have proven to achieve various heights, widths, pitches, and aspect ratios.
  • For example, the height (H) and/or the width (W) can be formed to be less than approximately 500 microns, less than approximately 200 microns, less than approximately 100 microns, less than approximately 50 microns, less than approximately 10 microns, less than approximately 1.0 micron, or less than approximately 0.1 micron. Additionally, the pitch may be defined to be less approximately 500 microns, less than approximately 200 microns, less than approximately 100 microns, less than approximately 50 microns, less than approximately 10 microns, less than approximately 1.0 micron, or less than approximately 0.1 micron. The aspect ratio may be defined to be greater than approximately 1:5, greater than approximately 1:2, greater than approximately 1:1, greater than approximately 2:1, or greater than approximately 5:1. Larger or smaller aspect ratios may also be achieved using focused ion beam milling. These different shapes and sizes may be advantageous for various applications.
  • Focused ion beam milling refers to a process in which ions such as gallium ions are accelerated toward the diamond in order to mill away atoms of the diamond (sometimes referred to as ablation). The acceleration of gallium ions may remove atoms from the diamond on an atom by atom basis. Vapor enhancing techniques using water vapors may also be used to improve the focused ion beam milling process. One suitable focused ion beam milling machine is the Micron model 9500, commercially available from FEI Inc. of Portland Oreg. In accordance with the principles of the invention, it has been experimentally determined that focused ion beam milling processes can be used to create multi-tipped diamonds. In general, features to be created in a microreplication tool can be defined. Then, focused ion beam milling can be performed to create a diamond having multiple tips that correspond to the features to be created.
  • In order to create an ion beam milled diamond having multiple tips, one can define features to be created in a microreplication tool, and create a specification for a diamond, wherein the specification defines multiple tips that correspond to features to be created in a microreplication tool. The specification can then be used to perform focused ion beam milling to create a diamond according to the specification. One exemplary provider of focused ion milling services that may be used to create one or more ion beam milled diamonds is Materials Analytical Services of Raleigh, N.C.
  • Focused ion beam milling generally is very expensive. Therefore, to reduce the costs associated with the creation of a multi-tipped diamond, it is desirable to initially process the diamond to be ion beam milled prior to submitting the diamond to the focused ion beam milling process. For example, less expensive techniques such as lapping, grinding, or wire sawing techniques may be used to mill away significant portions of the diamond. The focused ion beam milling process may be needed to achieve one or more of the dimensions or features listed above. Still, by initially processing the diamond prior to focused ion beam milling, the amount of focused ion beam milling time required to create the final ion beam milled diamond can be reduced. Lapping refers to a process of removing material from the diamond using a loose abrasive, whereas grinding refers to a process in which material is removed from the diamond using an abrasive that is fixed in a medium or substrate.
  • FIG. 8 is a cross-sectional top view illustrating a two-tipped diamond 80 cutting grooves into a work piece 82. FIG. 9 is another cross-sectional top view of work piece 82, illustrating the grooves 91A and 91B as well as protrusion 92 that results from the cut illustrated in FIG. 8. As can be appreciated by FIGS. 8 and 9, protrusion 92 is defined by the valley formed between neighboring tips of diamond 80. For this reason, protrusion 92 may be a distance (D) from an outer surface of work piece 82. In other words, an amount of material corresponding to distance D is removed from work piece to define the top of protrusion 92. This may result in more uniformity between protrusions formed on work piece 82 relative to protrusions created using a single tipped diamond. In addition, clean-up of protrusion 92 may be reduced or avoided.
  • Grooves 91A and 91B also have substantially the same depth relative to one another. In contrast, when a single tipped diamond is used to create grooves a microreplication tool, depth variations between adjacent grooves may be formed. By using a multi-tipped diamond to simultaneously cut grooves, clean-up associated with depth variations between adjacent grooves may also be reduced or avoided.
  • FIGS. 10 and 11 are additional cross-sectional top views illustrating the two-tipped diamond 80 cutting subsequent grooves into work piece 82 (FIG. 10) and the subsequent grooves and protrusions that results from the cut (FIG. 11). In other words, the cut illustrated in FIG. 10 may be subsequent to the cut illustrated in FIG. 8. As shown in FIG. 11, clean-up associated with protrusion 102 may be necessary to an extent of distance D. However, clean-up on the other protrusions 92 and 104 may be reduced or avoided. Also, because the protrusions 92 and 104 are similarly defined by work piece 82, the amount of clean-up required on protrusion 102 can be more easily quantified by distance D, which corresponds to the same amount of material removed from the top of protrusions 92 and 104 during the respective cuts by diamond 80. In short, by using a multi-tipped diamond, more precise features can be created in work piece 82 and the required amount of clean-up may be reduced.
  • FIG. 12 illustrates an alternative to the cutting technique illustrated in FIG. 10. FIG. 12 is a cross-sectional top view illustrating the two-tipped diamond 80 making a subsequent cut to that illustrated in FIG. 8. In FIG. 12, however, the subsequent cut overlaps with the previous cut. In other words, the left most tip of diamond 80 follows groove 92 (FIG. 9), and the right most tip of diamond 80 cuts another groove. Such a cutting technique may result in more precise similarities between created features in the work piece, and clean-up may be reduced or avoided. In some cases, a large number of tips may be formed on a diamond, but only one tip may overlap during subsequent cutting passes. The overlapping tip may be used to precisely position the diamond relative to the work piece such that the features cut into the work piece have substantial similarity in terms of heights and depths.
  • FIG. 13 illustrates one technique that may be used to simplify the creation of a two-tipped diamond. Diamond 130 may be initially processed by lapping edges 131A and 131B. Also, a wire saw can be used to create an initial valley 132. These simple processing steps can significantly reduce the amount of focused ion beam milling time required to create the final ion beam milled diamond. Once processed, diamond 130 can be sent to an focused ion beam milling process (as conceptually represented by the arrows of FIG. 13). The focused ion beam milling process can be used to accelerate gallium ions at diamond 130 in order to mill away diamond atoms to ultimately define the multi-tipped ion beam milled diamond 10.
  • As outlined above, a multi-tipped diamond may include any number of tips, and the tips may assume a wide variety of shapes and sizes. FIG. 14 is a top view illustrating a multi-tipped diamond. In the example of FIG. 14, multi-tipped diamond 140 defines nine separate tips. The tips of a diamond like that illustrated in FIG. 14 may define widths (W) of approximately 0.1 micron, pitches (P) of approximately 0.2 micron, heights (H) of approximately 0.2 micron and an aspect ration (H:W) of approximately 2:1. Similar to the illustration of FIG. 2, diamond 140 may extend a distance in a thickness direction, and the valleys of diamond may also extend a distance in the thickness direction.
  • FIG. 15 illustrates a technique that may be used to simplify the creation of a multi-tipped diamond like that illustrated in FIG. 14. In that case, diamond 150 may be initially processed by lapping or grinding sides 151A and 151B in order to define one relatively wide protrusion 152. Once processed, diamond 150 can be sent to an focused ion beam milling process (as conceptually represented by the arrows of FIG. 15). The focused ion beam milling process can then be applied to accelerate gallium ions at diamond 150 in order to mill away diamond atoms to ultimately define the multi-tipped ion beam milled diamond 140 according to specification.
  • FIG. 16 is a perspective view of a two-tipped ion beam milled diamond similar to FIG. 2B. As shown in FIG. 16, diamond 12 may define five specifically defined surfaces (S1-S5). Surfaces S1, S2 and S3 may be created by grinding or lapping techniques, and surfaces S4 and S5 may be created by focused ion beam milling techniques.
  • FIGS. 17-24 are additional cross-sectional top views illustrating various multi-tipped ion beam milled diamonds according to various embodiments of the invention. As shown in FIG. 17, a diamond may include tips of different shapes and sizes. For example, tip 171 may be used to create one type of feature in a work piece, and tips 172 may be used to create another type of feature in a work piece. By way of example, a height of tip 171 may be more than approximately 5-times larger than the height of tips 172, more than approximately 10-times larger, or more than approximately 20-times larger.
  • As shown in FIG. 18, a diamond may include multiple relatively large tips 181A and 181B, separated by relatively small tips 182. In this example, tips 182 define a periodic sinusoidal function. Similarly, as shown in FIG. 19, tips 191 ay define a periodic sinusoidal function. Any other mathematical function, random or pseudo-random surface may also be formed. FIG. 20 shows a slight variation of a two-tipped diamond in which an outer surface 203 of tip 201 defines an angle that is different than that of an inner surface 202.
  • FIG. 21 illustrates a diamond in which tips 211 are formed on a side of tip 212. FIG. 22 illustrates a diamond in which tips 221 and 222 define variable different heights. Variable valleys, variable inner surface wall angles, and/or variable pitch spacing between adjacent tips may also be defined.
  • FIG. 23 illustrates a diamond in which tips define a valley having a convex radius (R). FIG. 24 illustrates a diamond in which multiple periodic sinusoidal like tips follow an arc-shaped surface of the diamond. These and many other variations of the invention are within the scope of the claims.
  • A number of embodiments have been described. For example, multi-tipped ion beam milled diamonds have been described for use in diamond tooling machines. Nevertheless, various modifications can be made to the embodiments described above without departing from the scope of the following claims. For example, the multi-tipped diamond may be used to cut grooves or other features into other types of work pieces, e.g., work pieces other than microreplication tools. Accordingly, other implementations and embodiments are within the scope of the following claims.

Claims (37)

1. A tool used for creating grooves in a work piece comprising:
a mounting structure; and
a multi-tipped diamond mounted in the mounting structure, wherein different tips of the diamond are focused ion beam milled to correspond to different grooves to be created in the work piece and define a valley between neighboring tips that corresponds to a protrusion to be created in a work piece.
2. The tool of claim 1, wherein the multi-tipped diamond includes two tips.
3. The tool of claim 2, wherein a pitch spacing of the two tips is less than approximately 500 microns.
4. The tool of claim 2, wherein inner surfaces of two tips meet along an axis to form a bottom of the valley.
5. The tool of claim 1, wherein the valley defines a bottom surface selected from the following group: a convex arc shaped surface, a concave arc shaped surface, and a flat surface.
6. The tool of claim 1, wherein a pitch spacing between neighboring tips is less than approximately 200 microns.
7. The tool of claim 6, wherein the pitch spacing is less than approximately 100 microns.
8. The tool of claim 7, wherein the pitch spacing is less than approximately 10 microns.
9. The tool of claim 8, wherein the pitch spacing is less than approximately 1 micron.
10. The tool of claim 9, wherein the pitch spacing is less than approximately 0.1 micron.
11. The tool of claim 1, wherein an aspect ratio of a height of a tip relative to a width of the tip is greater than approximately 1 to 1.
12. The tool of claim 11, wherein an aspect ratio of a height of a tip relative to a width of the tip is greater than approximately 2 to 1.
13. The tool of claim 1, wherein the tips define a width of less than approximately 200 microns.
14. The tool of claim 1, wherein the tips define substantially straight side walls and wherein a bottom of the valley formed by neighboring tips approximately defines a right angle relative to the side walls.
15. The tool of claim 1, wherein the tips define undercut side walls and wherein a bottom of the valley formed by neighboring tips defines an acute angle relative to side walls adjacent the bottom of the valley.
16. The tool of claim 1, wherein the tips define side walls and wherein a bottom of the valley formed by neighboring tips defines an obtuse angle relative to side walls adjacent the valley.
17. The tool of claim 1, wherein the diamond defines a thickness, and wherein the valley extends a distance along the thickness.
18. A multi-tipped diamond having tips that are focused ion beam milled to correspond to grooves to be created in a microreplication tool, wherein a valley is defined between neighboring tips that corresponds to a protrusion to be created in the microreplication tool.
19. The diamond of claim 18, wherein the diamond includes two tips.
20. The diamond of claim 19, wherein a pitch spacing of the two tips is less than approximately 500 microns.
21. The diamond of claim 19, wherein inner surfaces of two tips meet along an axis to form a bottom of the valley.
22. The diamond of claim 18, wherein the valley defines a bottom surface selected from the following group: a convex arc shaped surface, a concave arc shaped surface, and a flat surface.
23. The diamond of claim 18, wherein a pitch spacing between neighboring tips is less than approximately 200 microns.
24. The diamond of claim 23, wherein the pitch spacing is less than approximately 100 microns.
25. The diamond of claim 24, wherein the pitch spacing is less than approximately 10 microns.
26. The diamond of claim 25, wherein the pitch spacing is less than approximately 1 micron.
27. The diamond of claim 26, wherein the pitch spacing is less than approximately 0.1 micron.
28. The diamond of claim 18, wherein an aspect ratio of a height of a tip relative to a width of the tip is greater than approximately 1 to 1.
29. The diamond of claim 28, wherein an aspect ratio of a height of a tip relative to a width of the tip is greater than approximately 2 to 1.
30. The diamond of claim 18, wherein the tips define an average width of less than approximately 200 microns.
31. The diamond of claim 18, wherein the tips define substantially straight side walls and wherein a bottom of the valley formed by neighboring tips approximately defines a right angle relative to the side walls.
32. The diamond of claim 18, wherein the tips define undercut side walls and wherein a bottom of the valley formed by neighboring tips defines an acute angle relative to side walls adjacent the bottom of the valley.
33. The diamond of claim 18, wherein the tips define side walls and wherein a bottom of the valley formed by neighboring tips defines an obtuse angle relative to side walls adjacent the bottom of the valley.
34. The diamond of claim 18, wherein the diamond defines a thickness, and wherein the valley extends a substantial distance along the thickness.
35. A diamond tooling machine used for creating grooves in a work piece comprising:
a diamond tool including a mounting structure and a multi-tipped diamond mounted in the mounting structure, wherein tips of the diamond correspond to grooves to be created in the work piece and wherein a valley is defined between neighboring tips that corresponds to a protrusion to be created in the microreplication tool; and
an apparatus to receive the diamond tool and to control positioning of the diamond tool relative to the work piece.
36. The diamond tooling machine of claim 35, wherein the machine is a fly-cutting machine that rotates the diamond tool about an axis.
37. A tool used for creating grooves in a microreplication tool comprising:
a mounting structure; and
a multi-tipped diamond mounted in the mounting structure, wherein tips of the diamond are focused ion beam milled to correspond to grooves to be created in the microreplication tool, wherein a valley is defined between neighboring tips that corresponds to a protrusion to be created in the microreplication tool, wherein the multi-tipped diamond defines a thickness, and wherein the valley extends a substantial distance along the thickness.
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Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070212177A1 (en) * 2006-03-13 2007-09-13 Matsushita Electric Industrial Co., Ltd. Machining tools having concave cutting surfaces for precision machining and methods of manufacturing such
US20110181971A1 (en) * 2008-04-02 2011-07-28 Campbell Alan B Methods and systems for fabricating optical films having superimposed features
US20110199697A1 (en) * 2008-04-02 2011-08-18 3M Innovative Properties Company Light directing film and method for making the same
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JP4556383B2 (en) * 2002-11-29 2010-10-06 コニカミノルタホールディングス株式会社 Processing method of transfer optical surface
US7804649B2 (en) * 2003-09-09 2010-09-28 3M Innovative Properties Company Microreplicated achromatic lens
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US20050231809A1 (en) * 2003-09-09 2005-10-20 Carlson Daniel H Microreplicated polarizing article
US7165959B2 (en) * 2003-09-09 2007-01-23 3M Innovative Properties Company Apparatus and method for producing two-sided patterned webs in registration
US7160583B2 (en) 2004-12-03 2007-01-09 3M Innovative Properties Company Microfabrication using patterned topography and self-assembled monolayers
EP1856566A1 (en) * 2005-03-09 2007-11-21 3M Innovative Properties Company Microreplicated article with defect-reducing surface
KR20070111544A (en) * 2005-03-09 2007-11-21 쓰리엠 이노베이티브 프로퍼티즈 컴파니 Apparatus and method for making microreplicated article
KR101286897B1 (en) * 2005-03-09 2013-07-16 쓰리엠 이노베이티브 프로퍼티즈 컴파니 Apparatus and method for making microreplicated article
US20060209428A1 (en) * 2005-03-09 2006-09-21 Dobbs James N Microreplicated article with moire reducing surface
JP4861400B2 (en) 2005-03-09 2012-01-25 スリーエム イノベイティブ プロパティズ カンパニー Apparatus and method for making aligned double-sided patterned webs
KR101312140B1 (en) * 2005-03-09 2013-09-26 쓰리엠 이노베이티브 프로퍼티즈 컴파니 Microreplicated article and method for the production thereof
WO2006098828A2 (en) * 2005-03-10 2006-09-21 Matsushita Electric Industrial Co., Ltd. Structured diamond tool made by focused ion beam nanomachining
US7757591B2 (en) * 2005-10-19 2010-07-20 3M Innovative Properties Company Aligned multi-diamond cutting tool assembly for creating microreplication tools
US7445409B2 (en) * 2005-10-19 2008-11-04 3M Innovative Properties Company Cutting tool assembly including diamond cutting tips at half-pitch spacing for land feature creation
US7677146B2 (en) * 2006-05-10 2010-03-16 3M Innovative Properties Company Cutting tool using one or more machined tool tips in a continuous or interrupted cut fast tool servo
US7628100B2 (en) * 2007-01-05 2009-12-08 3M Innovative Properties Company Cutting tool using one or more machined tool tips with diffractive features in a continuous or interrupted cut fast tool servo
TW200920521A (en) 2007-04-05 2009-05-16 Toshiba Machine Co Ltd Method and apparatus for machining surface of roll
US20090041553A1 (en) * 2007-08-06 2009-02-12 3M Innovative Properties Company Fly-cutting system and method, and related tooling and articles
US9180524B2 (en) * 2007-08-06 2015-11-10 3M Innovative Properties Company Fly-cutting head, system and method, and tooling and sheeting produced therewith
US20090147361A1 (en) * 2007-12-07 2009-06-11 3M Innovative Properties Company Microreplicated films having diffractive features on macro-scale features
DE102008058452A1 (en) 2008-08-05 2010-02-11 Gühring Ohg Method and tool for producing a surface of predetermined roughness
JP2010115741A (en) * 2008-11-12 2010-05-27 Toshiba Mach Co Ltd Cutting method of high hardness material and cutting machine
EP2427287A2 (en) * 2009-05-04 2012-03-14 3M Innovative Properties Company Methods for making microreplication tools
KR101796806B1 (en) 2010-04-12 2017-11-10 쓰리엠 이노베이티브 프로퍼티즈 컴파니 Optical stack and lightguides
DE102010028625A1 (en) * 2010-05-05 2011-11-10 Komet Group Gmbh Tool carrier with cutting tool for turning
EP2404739A1 (en) 2010-07-09 2012-01-11 3M Innovative Properties Co. Durable hyrophobic structured surface
EP2632613B1 (en) 2010-10-28 2017-08-30 3M Innovative Properties Company Engineered surfaces for reducing bacterial adhesion
US8692446B2 (en) 2011-03-17 2014-04-08 3M Innovative Properties Company OLED light extraction films having nanoparticles and periodic structures
TWI453107B (en) * 2011-07-11 2014-09-21 Benq Materials Corp Manufacturing method of roller used for manufacturing patterned retardation film
US8659221B2 (en) 2011-08-26 2014-02-25 3M Innovative Properties Company OLED light extraction film with multi-periodic zones of nanostructures
CN102431367B (en) * 2011-08-31 2014-07-02 明基材料有限公司 Method for manufacturing roller of phase-difference film
JP5821483B2 (en) * 2011-09-30 2015-11-24 大日本印刷株式会社 Roll mold manufacturing method, roll mold, and optical sheet manufacturing method
CN102335763A (en) * 2011-10-24 2012-02-01 山东蓝天首饰有限公司 Cutter special for processing jewelry and method for using cutter
US9818983B2 (en) 2012-02-28 2017-11-14 3M Innovative Properties Composition comprising surface modified high index nanoparticles suitable for optical coupling layer
JP5880206B2 (en) * 2012-03-28 2016-03-08 大日本印刷株式会社 Prism sheet mold manufacturing method
SE537354C2 (en) * 2012-04-24 2015-04-14 Sandvik Intellectual Property Indexable cutter and tool for chip separating machining where the cutter has six equally long cutting tips, as well as the basic body for the tool
US8933347B2 (en) 2012-05-29 2015-01-13 Bryan P. KIPLE Components of an electronic device
US20150228929A1 (en) 2012-08-22 2015-08-13 3M Innovative Properties Company Microcavity oled light extraction
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US9050669B2 (en) 2012-10-04 2015-06-09 Illinois Tool Works Inc. Rapidly retractable tool support for a pipe machining apparatus
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KR20150091111A (en) 2012-11-30 2015-08-07 쓰리엠 이노베이티브 프로퍼티즈 컴파니 Emissive display with reflective polarizer
US9610636B2 (en) 2013-01-09 2017-04-04 Illinois Tool Works Inc. Pipe machining apparatuses and methods of operating the same
US9623484B2 (en) * 2013-01-14 2017-04-18 Illinois Tool Works Inc. Pipe machining apparatuses and methods of operating the same
JP6107210B2 (en) * 2013-02-20 2017-04-05 日本精工株式会社 Thread part processing method and processing apparatus
WO2014189716A1 (en) 2013-05-21 2014-11-27 3M Innovative Properties Company Nanostructured spore carrier
JP2016527571A (en) 2013-08-12 2016-09-08 スリーエム イノベイティブ プロパティズ カンパニー Luminescent article having light extraction film
MX370557B (en) 2013-10-03 2019-12-17 Illinois Tool Works Pivotal tool support for a pipe machining apparatus.
JP6656177B2 (en) 2014-06-13 2020-03-04 スリーエム イノベイティブ プロパティズ カンパニー Optical laminate for reducing sparkle
WO2015191949A1 (en) 2014-06-13 2015-12-17 3M Innovative Properties Company Optical stacks for sparkle reduction
WO2015198361A1 (en) * 2014-06-23 2015-12-30 Sumitomo Electric Hardmetal Corp. Cutting tool and method of manufacturing a cutting tool
US9862124B2 (en) 2014-07-18 2018-01-09 3M Innovative Properties Company Multilayer optical adhesives and methods of making same
DE102014117398B3 (en) * 2014-11-27 2016-05-25 Thielenhaus Technologies Gmbh Method for generating grooves on a camshaft
US10065246B2 (en) 2015-04-13 2018-09-04 Illinois Tool Works Inc. Laser line generator tool for a pipe machining apparatus
US10099292B2 (en) 2015-08-12 2018-10-16 Illinois Tool Works Inc. Crash resistant trip for a pipe machining apparatus
CN105382663B (en) * 2015-11-11 2017-08-08 沈阳黎明航空发动机(集团)有限责任公司 A kind of processing method of diamond roller Surface inspection test piece
EP3391020B1 (en) * 2015-12-09 2021-11-17 Massachusetts Materials Technologies LLC Measurement of material properties under local tensile stress through contact mechanics
US10761320B2 (en) 2015-12-09 2020-09-01 3M Innovative Properties Company Optical stack including a grating
CN108473826B (en) 2016-01-15 2021-01-15 3M创新有限公司 Optical adhesive
US11583933B1 (en) * 2017-01-19 2023-02-21 Consolidated Nuclear Security, LLC Shaped cutting tool and method of use to efficiently form a finished part
US10596633B1 (en) * 2017-01-19 2020-03-24 Consolidated Nuclear Security, LLC Shaped cutting tool
CN110662988A (en) 2017-06-02 2020-01-07 3M创新有限公司 Optical film and optical system
JP7106774B2 (en) * 2017-06-21 2022-07-26 デクセリアルズ株式会社 Microfabrication device, microfabrication unit, control device, master manufacturing method, and microfabrication method for master substrate
DE102017121354A1 (en) * 2017-09-14 2019-03-14 Gühring KG Roughening tool and method for its production
JP7312765B2 (en) 2018-04-20 2023-07-21 スリーエム イノベイティブ プロパティズ カンパニー Headsets and head-mounted displays
JP7040710B2 (en) * 2018-06-15 2022-03-23 エルジー・ケム・リミテッド Decorative material
US11766822B2 (en) 2019-08-20 2023-09-26 3M Innovative Properties Company Microstructured surface with increased microorganism removal when cleaned, articles and methods
WO2022243772A1 (en) 2021-05-20 2022-11-24 3M Innovative Properties Company Micro-cut patterned article and method of making same
WO2023105372A1 (en) 2021-12-07 2023-06-15 3M Innovative Properties Company Microstructured surface and articles with lower visibilty of scratches and methods
WO2024047419A1 (en) 2022-08-31 2024-03-07 Solventum Intellectual Properties Company Articles including a microstructured curved surface, tooling articles, and methods

Citations (27)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1348115A (en) * 1918-08-31 1920-07-27 Leon G Buckwalter Reversible-taper roughing-reamer
US2733730A (en) * 1956-02-07 turak
US2738730A (en) * 1952-07-01 1956-03-20 Fairchild Camera Instr Co Method for forming engraved image-reproducing plates
US3680213A (en) * 1969-02-03 1972-08-01 Karl O Reichert Method of grooving semiconductor wafer for the dividing thereof
US3780409A (en) * 1971-02-19 1973-12-25 Fansteel Inc Threading tool
US3813970A (en) * 1972-01-10 1974-06-04 Ammco Tools Inc Tool holder
US3893356A (en) * 1974-03-19 1975-07-08 Frank Atzberger Rotor cutter
US4035590A (en) * 1975-06-30 1977-07-12 Rca Corporation Apparatus for electromechanical recording of short wavelength modulation in a metal master
US4044379A (en) * 1975-06-30 1977-08-23 Rca Corporation Method and apparatus for electromechanical recording of short wavelength modulation in a metal master
US4111083A (en) * 1977-08-08 1978-09-05 Carter Walter L Tool holder
US4113266A (en) * 1977-04-25 1978-09-12 Pickering & Company, Inc. Playback stylus for phonograph record stamper
US4113267A (en) * 1977-04-25 1978-09-12 Pickering & Company, Inc. Double stylus assembly for phonograph record stamper playback
US4287689A (en) * 1979-10-30 1981-09-08 Rca Corporation Method for improving the quality of low frequency output of a video disc pickup stylus
US4355382A (en) * 1980-12-24 1982-10-19 Rca Corporation Apparatus for sharpening a cutting stylus
US4504940A (en) * 1982-04-09 1985-03-12 Hitachi, Ltd. Stylus for use with video disc and method of grinding such stylus
US4525751A (en) * 1982-08-27 1985-06-25 Rca Corporation Disc record with tapered groove
US4863321A (en) * 1987-05-30 1989-09-05 Wera Werk Hermann Werner Gmbh & Co. Fly-cutter milling machine
US5216843A (en) * 1992-09-24 1993-06-08 Intel Corporation Polishing pad conditioning apparatus for wafer planarization process
US5555473A (en) * 1995-02-21 1996-09-10 Ohio Electronic Engravers, Inc. Engraving system and method for helical or circumferential engraving
US5663802A (en) * 1993-02-25 1997-09-02 Ohio Electronic Engravers, Inc. Method and apparatus for engraving using multiple engraving heads
US5814355A (en) * 1996-04-30 1998-09-29 Minnesota Mining And Manufacturing Company Mold for producing glittering cube-corner retroreflective sheeting
US5958799A (en) * 1995-04-13 1999-09-28 North Carolina State University Method for water vapor enhanced charged-particle-beam machining
US6110030A (en) * 1998-03-23 2000-08-29 Hashimoto; Hiroshi Ultra fine groove chip and ultra fine groove tool
US6253442B1 (en) * 1997-07-02 2001-07-03 3M Innovative Properties Company Retroreflective cube corner sheeting mold and method for making the same
US6337281B1 (en) * 1992-08-19 2002-01-08 Rodel Holdings Inc. Fixed abrasive polishing system for the manufacture of semiconductor devices, memory disks and the like
US6379592B1 (en) * 1998-02-20 2002-04-30 3M Innovative Properties Company Method and apparatus for seamless microreplication using an expandable mold
US6578254B2 (en) * 2000-12-08 2003-06-17 Sandia Corporation Damascene fabrication of nonplanar microcoils

Family Cites Families (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR967169A (en) 1948-05-18 1950-10-27 One-piece phonograph needle or style, but two-piece of different flexibility and stiffness
DE885163C (en) 1951-06-16 1953-08-03 Blaupunkt Elektronik G M B H Universal double needles for normal and micro-groove records
CH359899A (en) 1959-07-24 1962-01-31 Colomb Andre A method of manufacturing a sapphire needle for a speaking machine and a needle obtained by implementing this method
WO1989004052A1 (en) 1987-10-22 1989-05-05 Oxford Instruments Limited Exposing substrates to ion beams
JPH0366501A (en) * 1989-08-03 1991-03-22 Kawasaki Steel Corp Recessing method for plated roll surface
JPH0679504A (en) * 1992-08-31 1994-03-22 Sumitomo Electric Ind Ltd Polycrystal diamond cutting tool and its manufacture
SG64333A1 (en) * 1993-09-13 1999-04-27 Minnesota Mining & Mfg Abrasive article method of manufacture of same method of using same for finishing and a production tool
WO1998004382A1 (en) * 1996-07-30 1998-02-05 Drukker International B.V. A method of producing a cutting tool insert
NL1004016C2 (en) 1996-09-12 1998-03-13 Oce Tech Bv Inkjet print head.
DE19836771A1 (en) * 1998-08-13 2000-02-17 Backes Rudolf Shaping process for producing grooves in hardened workpieces uses interchangeable tool plates whose engagement area is made from hard brittle material which breaks in event of excessive strain
JP3299523B2 (en) * 1999-07-08 2002-07-08 東邦エンジニアリング株式会社 Tool for turning groove of hard foam resin pad
IL138710A0 (en) 1999-10-15 2001-10-31 Newman Martin H Atomically sharp edge cutting blades and method for making same
JP2001310204A (en) * 2000-04-25 2001-11-06 Toshiba Tungaloy Co Ltd Throw-away tip and bite holder for grooving
JP2002307210A (en) * 2001-04-19 2002-10-23 Toyoda Van Moppes Ltd Single crystal diamond cutting tool and its manufacturing method

Patent Citations (28)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2733730A (en) * 1956-02-07 turak
US1348115A (en) * 1918-08-31 1920-07-27 Leon G Buckwalter Reversible-taper roughing-reamer
US2738730A (en) * 1952-07-01 1956-03-20 Fairchild Camera Instr Co Method for forming engraved image-reproducing plates
US3680213A (en) * 1969-02-03 1972-08-01 Karl O Reichert Method of grooving semiconductor wafer for the dividing thereof
US3780409A (en) * 1971-02-19 1973-12-25 Fansteel Inc Threading tool
US3813970A (en) * 1972-01-10 1974-06-04 Ammco Tools Inc Tool holder
US3893356A (en) * 1974-03-19 1975-07-08 Frank Atzberger Rotor cutter
US4035590A (en) * 1975-06-30 1977-07-12 Rca Corporation Apparatus for electromechanical recording of short wavelength modulation in a metal master
US4044379A (en) * 1975-06-30 1977-08-23 Rca Corporation Method and apparatus for electromechanical recording of short wavelength modulation in a metal master
US4113266A (en) * 1977-04-25 1978-09-12 Pickering & Company, Inc. Playback stylus for phonograph record stamper
US4113267A (en) * 1977-04-25 1978-09-12 Pickering & Company, Inc. Double stylus assembly for phonograph record stamper playback
US4111083A (en) * 1977-08-08 1978-09-05 Carter Walter L Tool holder
US4287689A (en) * 1979-10-30 1981-09-08 Rca Corporation Method for improving the quality of low frequency output of a video disc pickup stylus
US4355382A (en) * 1980-12-24 1982-10-19 Rca Corporation Apparatus for sharpening a cutting stylus
US4504940A (en) * 1982-04-09 1985-03-12 Hitachi, Ltd. Stylus for use with video disc and method of grinding such stylus
US4525751A (en) * 1982-08-27 1985-06-25 Rca Corporation Disc record with tapered groove
US4863321A (en) * 1987-05-30 1989-09-05 Wera Werk Hermann Werner Gmbh & Co. Fly-cutter milling machine
US6337281B1 (en) * 1992-08-19 2002-01-08 Rodel Holdings Inc. Fixed abrasive polishing system for the manufacture of semiconductor devices, memory disks and the like
US5216843A (en) * 1992-09-24 1993-06-08 Intel Corporation Polishing pad conditioning apparatus for wafer planarization process
US5663802A (en) * 1993-02-25 1997-09-02 Ohio Electronic Engravers, Inc. Method and apparatus for engraving using multiple engraving heads
US5555473A (en) * 1995-02-21 1996-09-10 Ohio Electronic Engravers, Inc. Engraving system and method for helical or circumferential engraving
US5958799A (en) * 1995-04-13 1999-09-28 North Carolina State University Method for water vapor enhanced charged-particle-beam machining
US6140655A (en) * 1995-04-13 2000-10-31 North Carolina State University Method for water vapor enhanced charged-particle-beam machining
US5814355A (en) * 1996-04-30 1998-09-29 Minnesota Mining And Manufacturing Company Mold for producing glittering cube-corner retroreflective sheeting
US6253442B1 (en) * 1997-07-02 2001-07-03 3M Innovative Properties Company Retroreflective cube corner sheeting mold and method for making the same
US6379592B1 (en) * 1998-02-20 2002-04-30 3M Innovative Properties Company Method and apparatus for seamless microreplication using an expandable mold
US6110030A (en) * 1998-03-23 2000-08-29 Hashimoto; Hiroshi Ultra fine groove chip and ultra fine groove tool
US6578254B2 (en) * 2000-12-08 2003-06-17 Sandia Corporation Damascene fabrication of nonplanar microcoils

Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070212177A1 (en) * 2006-03-13 2007-09-13 Matsushita Electric Industrial Co., Ltd. Machining tools having concave cutting surfaces for precision machining and methods of manufacturing such
US7614831B2 (en) * 2006-03-13 2009-11-10 Panasonic Corporation Machining tools having concave cutting surfaces for precision machining and methods of manufacturing such
EP2219833A4 (en) * 2007-10-29 2017-08-02 3M Innovative Properties Company Cutting tool using one or more machined tool tips with diffractive features
CN107824821A (en) * 2007-10-29 2018-03-23 3M创新有限公司 Use the cutting element of one or more machined tool tips with diffractive features
US20110181971A1 (en) * 2008-04-02 2011-07-28 Campbell Alan B Methods and systems for fabricating optical films having superimposed features
US20110199697A1 (en) * 2008-04-02 2011-08-18 3M Innovative Properties Company Light directing film and method for making the same
US9810817B2 (en) 2008-04-02 2017-11-07 3M Innovative Properties Company Light directing film and method for making the same
US10197713B2 (en) 2008-04-02 2019-02-05 3M Innovative Properties Company Light directing film and method for making the same
US11142379B2 (en) 2014-07-16 2021-10-12 Koninklijke Douwe Egberts B.V. Die-cut lid and associated container and method
US11325760B2 (en) 2014-07-16 2022-05-10 Koninklijke Douwe Egberts B.V. Die-cut lid and associated container and method
US10512974B1 (en) 2016-12-07 2019-12-24 Quantum Valley Investment Fund LP Diamond machining tool

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