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2000
Volume 19, Issue 7
  • ISSN: 1872-2121
  • E-ISSN: 2212-4047

Abstract

Diamond grinding wheels, particularly the advanced single-layer brazed variants, are indispensable for efficiently machining hard materials such as ceramics. Effective dressing is crucial, as it optimizes the wheel's isotropy and rotational accuracy, thereby ensuring precise machining. The selection of dressing tools and the conditions under which they operate significantly influence wheel quality, impacting key factors including topography, sharpness, wear rate, grinding forces, temperatures, and the surface integrity of the machined part. Consequently, the development of cost-effective, high-performance dressing devices is of paramount importance. Furthermore, to provide a comprehensive review of representative patents in diamond grinding wheel dressing and to analyze the unique features, advantages, and disadvantages of various diamond grinding wheel dressing methods. Differentiating by method, diamond grinding wheel dressing devices fall into mechanical, memorable, and compound categories. Each patent addresses traditional device drawbacks with unique innovations, highlighting technical gaps and development needs in respective fields. Contemporary research in diamond dressing technology predominantly revolves around optimizing mechanical dressing methodologies. This focus is complemented by pioneering advancements in the architectural design and performance augmentation of dressing apparatuses, aiming to elevate efficiency and precision in various industrial applications. Specialized dressing techniques have resulted in many superior devices that are now widely utilized. Modern dressing devices are characterized by their high accuracy, efficiency, and performance. The mechanical dressing method enjoys the broadest applicability, proving highly effective for dressing diamond grinding wheels. Specialized dressing methods, on the other hand, offer superior dressing effects and the distinct advantage of contactless operation, thereby extending the service life of diamond grinding wheels. The composite dressing approach, merging the best attributes of mechanical and specialized methods, presents significant potential. Though currently underrepresented in terms of available devices, this field is expected to see considerable development and expansion in the future.

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2024-07-23
2025-10-03
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References

  1. BinS. ShenW. Random dressing technology of metal bond diamond grinding wheels.Technol. Innov.202306143145
    [Google Scholar]
  2. LiangS. Research on porous metal bond and preparation of superabrasives.Yanshan University2021
    [Google Scholar]
  3. ShuaiW. Research on correction technology of diamond grinding wheel.Nanjing University of Aeronautics and Astronautics Jiangsu2011
    [Google Scholar]
  4. XiaJ. YanQ. PanJ. LuoZ. TaoW. A review on the research progress of ultra-precision grinding technology for hard and brittle materials.Journal of Guangdong University of Technology202340063243
    [Google Scholar]
  5. GuoY. Synthesis and application of diamond.Science and Technology Press Beijing1984
    [Google Scholar]
  6. WeiY. XuebingW.E.N. HongX. Research on the development of porous metal bond CBN grinding wheel and its efficient grinding and machining of titanium alloy.Aviation Manufacturing Technology201962206469
    [Google Scholar]
  7. ChenZ. ZhuY. YunZ. CNC grinding processing technology of integral leaf disc superhard abrasive grinding wheel.Aviation Manufacturing Technology201861196472
    [Google Scholar]
  8. LiuJ. WeiY. WangX. Application of CBN grinding wheel in engine manufacturing.Tool Technology20154924851
    [Google Scholar]
  9. LiK. GaoY. LiX. Internal grinding program of miniature bearing rings applying ceramic CBN grinding wheels.Superabrasives Engineering20203211923
    [Google Scholar]
  10. YuanLi Research on ultra-precision machining of semiconductor silicon wafers.Specialized equipment for electronics industry2018268713
    [Google Scholar]
  11. LiuM. LiK. ZhaoX. R&D history and technology development trend of CBN abrasives in China.Diamond and Abrasives Engineering201737116
    [Google Scholar]
  12. ShiChaoyu ZhuJianhui FengBingqiang Research on the influence of resin and diamond in carbide grinding process.Combined machine tools and automated machining technology201711138141
    [Google Scholar]
  13. LiY. WangY. HuY. Status quo and prospect of dressing technology of electroplated superabrasive grinding wheels.Superabrasives Engineering20203223338
    [Google Scholar]
  14. CuiZ. HeQ. ChuangjuF. Research on dressing technology of superabrasives.Diamond and Abrasives Engineering20163614349
    [Google Scholar]
  15. DengH. Dressing methods of superabrasive grinding wheels: A review.J. Manuf. Process.2019454669
    [Google Scholar]
  16. QingliangZ. LinglingZ. YuW. Experimental study on efficient precision dressing of electroplated diamond grinding wheel and fused silica grinding.Jixie Gongcheng Xuebao20134923176181
    [Google Scholar]
  17. JunQ.Z. ChengZ.D. PengY.G. Mechanical dressing of resin bond diamond grinding wheel based on dressing force.Optics and Precision Engineering2015234996100310.3788/OPE.20152304.0996
    [Google Scholar]
  18. GhoshA. Experimental investigation on performance of touch-dressed single-layer brazed CBN wheels.Int. J. Mach. Tools Manuf.200747712061213
    [Google Scholar]
  19. CuiZ.M. LiuN.F. Technique and application about diamond dressing roller.Key Eng. Mater.200625256
    [Google Scholar]
  20. ZhaoJ. FengK. ZhuJ. Influence of different sharpening tools on the sharpening effect of resinbonded CBN grinding wheels.Tool Technology201650128285
    [Google Scholar]
  21. FanW. YanL. Research on adhesion repair technology for grinding high temperature alloy by superabrasive grinding wheel.Aerospace precision manufacturing technology20145081416
    [Google Scholar]
  22. LiangZ. WuL. ZhouT. Experimental study on dressing of diamond grinding wheel with V-shaped tip tangential grinding.Jixie Gongcheng Xuebao201854319620210.3901/JME.2018.03.196
    [Google Scholar]
  23. FunH. HuiD. GuangzhiY. Research progress on the design and preparation of structured superabrasive grinding wheels.Surf. Technol.202352124256
    [Google Scholar]
  24. LeiL. KernanL. CaoJ. Research on the correction method of anomalies in precision dressing of superabrasive grinding wheels.Superabrasives Engineering202335061016
    [Google Scholar]
  25. FengK. Du XiaoxuW.B. Review of circular dressing technology for superabrasive grinding wheels.Superabrasives Engineering202335023442
    [Google Scholar]
  26. LiuZ. ZhangF. KaiW. Experimental study on surface morphology of metal-based circular grinding wheels by EDM.Diamond and Abrasives Engineering20163653237
    [Google Scholar]
  27. SuzukiK. On-machine truing/dressing of metal bond grinding wheels by electro-discharge machining.CIRP Annals- Manufacturing Technology1987361115118
    [Google Scholar]
  28. CaoM. ChenG. WeiZ. Deflection laser tangential dressing of concave surface diamond chamfering grinding wheels.Laser Technology114
    [Google Scholar]
  29. FengZ. Study on the design of cathode for electrolytic dressing of metal bond diamond molding grinding wheels.Tianjin University2005
    [Google Scholar]
  30. JieZ. GaoG. New progress of ultrasonic vibration dressing of superabrasive grinding wheels.Diamond and Abrasives Engineering201017627983
    [Google Scholar]
  31. FengJ. LiC. WinN. Research status and prospect of grinding wheel dressing technology.Zhongguo Jixie Gongcheng2021322024352448
    [Google Scholar]
  32. CuiZ. Development of grinding wheel dressing technology.Diamond and Abrasives Engineering2021410314
    [Google Scholar]
  33. LiM. DingW. LiB. XuJ. Morphological evolution and grinding performance of vitrified bonded microcrystal alumina abrasive wheel dressed with a single-grit diamond.Ceram. Int.20194516196691967810.1016/j.ceramint.2019.06.216
    [Google Scholar]
  34. ZhaoJ. FengK. BoX. Experimental study on dressing of microcrystalline corundum grinding wheel.Mechanical Design and Manufacturing20198153156
    [Google Scholar]
  35. HongyanH. KemingF. KwaiZ. Superabrasive grinding wheel dressing and spot wheel dressing technology.Modern Manufacturing Engineering2022018084
    [Google Scholar]
  36. ShiL. Research on dressing accuracy and parameter optimization of crankshaft machining grinding wheel.Mechanical Research and Application20233605116122
    [Google Scholar]
  37. GuoD. KangR. Theory and technology of ultraprecision grinding of silicon wafers.Electronic Industry Press Beijing2019
    [Google Scholar]
  38. TaoH. LiuY. ZhaoD. LuX. Prediction and measurement for grinding force in wafer self-rotational grinding.Int. J. Mech. Sci.202325810853010.1016/j.ijmecsci.2023.108530
    [Google Scholar]
  39. TaoH. LiuY. ZhaoD. LuX. The material removal and surface generation mechanism in ultra-precision grinding of silicon wafers.Int. J. Mech. Sci.202222210724010.1016/j.ijmecsci.2022.107240
    [Google Scholar]
  40. LongJ. Research status and prospect of chemical mechanical grinding technology.Equipment Management and Maintenance2023222122
    [Google Scholar]
  41. LiC. Development and experimental research of longitudinal and torsional composite ultrasonic-assisted diamond roller dressing device.Henan University of Science and Technology2022
    [Google Scholar]
  42. YangM. CuiZ. HeQ. Application of diamond roller dressing technology in bearing raceway grinding.Bearing201931519
    [Google Scholar]
  43. WangJ. ZhaoQ. ZhangC. GuoB. YuanJ. On-machine precision form truing and in-situ measurement of resin-bonded spherical diamond wheel.Appl. Sci.2020104148310.3390/app10041483
    [Google Scholar]
  44. FengK. ZhaoJ. BoX. Review and prospect of dressing technology of superabrasive grinding wheels.Weapon Materials Science and Engineering2019422115121
    [Google Scholar]
  45. ZhuJ. ShiC. ZhaoY. Automatic regulation method and experimental verification of circular contour accuracy of ceramic cBN grinding wheels for groove grinding.Bearing202333236
    [Google Scholar]
  46. LiX. ZhangZ. LiZ. Design and study of circular diamond disk type roller dresser.Precision Manufacturing and Automation202132527
    [Google Scholar]
  47. WuY. GaoL. SonghuaL.I. Research on precision dressing process of large diameter convex arc diamond grinding wheel.Modern Manufacturing Engineering2022797103
    [Google Scholar]
  48. HuiD. Research on nanosecond laser dressing coarse-grained diamond grinding wheel and its grinding performance.Weapon Materials Science and Engineering20174032124
    [Google Scholar]
  49. DoldC. A study on laser touch dressing of electroplated diamond wheels using pulsed picosecond laser sources.CIRP Annals-Manufacturing Technology2011601363366
    [Google Scholar]
  50. HuiD. The grinding performance of a laser-dressed bronze-bonded diamond grinding wheel.Int. J. Adv. Manuf. Technol.20178817891798
    [Google Scholar]
  51. ChristianW. Dressing and truing of hybrid bonded CBN grinding tools using short-pulsed fibre laser.CIRP Annals Manufacturing Technology2012611279282
    [Google Scholar]
  52. RaoX. ZhangF. LiY. Development of online shaping device for metal-based arc grinding wheel for large-diameter SiC mirrors.Zhongguo Jixie Gongcheng2017282024082413
    [Google Scholar]
  53. KlinkA. Wire electro discharge trueing and dressing of fine grinding wheels.CIRP Ann.201059123523810.1016/j.cirp.2010.03.076
    [Google Scholar]
  54. LuteyA. Laser profiling of aluminum oxide grinding wheels.ASME 2015 International Manufacturing Science and Engineering Conference, Charlotte, North Carolina, USA. June 8–12, 2015..
    [Google Scholar]
  55. GuoX. YuchunX.U. CaoJ. Laser dressing technology for micro-grooves on the surface of metal-bonded diamond grinding wheels.Diamond and Abrasives Engineering2022423364372
    [Google Scholar]
  56. ZhouX. Experimental research on laser dressing of garden arc resin diamond grinding wheels.Hunan University of Science and Technology Changsha2020
    [Google Scholar]
  57. JunQ. WeiL. Precision Internal Grinding with a Metal-bonded Diamond Grinding Wheel.J. Mater. Process. Technol.20001051/28086
    [Google Scholar]
  58. OhmoriH. Microscopic grinding effects on fabrication of ultra-fine micro tools.CIRP Annals Manu-facturing Technology2007561569572
    [Google Scholar]
  59. WuQ. OuyangZ. WangY. YangH. SongK. Precision grinding of engineering ceramic based on the electrolytic dressing of a multi-layer brazed diamond wheel.Diam. Relat. Mater.201910010755210.1016/j.diamond.2019.107552
    [Google Scholar]
  60. XiaopingW.U. ZhiyongO. HuiY. Study on the effect of carbon nanotubes on the grinding performance of electrolytic dressing of large-grained multilayer brazed diamond grinding wheels.Jixie Gongcheng Xuebao202056723123910.3901/JME.2020.07.231
    [Google Scholar]
  61. PengYao WeiWang HuangChuanzhen High efficiency abrasive waterjet dressing of diamond grinding wheel.Adv. Mater. Res.20141017243248
    [Google Scholar]
  62. ZhangZ. YaoP. ZhangZ. XueD. WangC. HuangC. ZhuH. A novel technique for dressing metal-bonded diamond grinding wheel with abrasive waterjet and touch truing.Int. J. Adv. Manuf. Technol.2017939-123063307310.1007/s00170‑017‑0738‑7
    [Google Scholar]
  63. NieR.J. A diamond grinding wheel dressing device.C.N. Patent 218427698U2023
    [Google Scholar]
  64. VasilievichK.P. GennadyevnaV.T. Automatic grinding circuit device.R.U. Patent 199007U12003
    [Google Scholar]
  65. ZhengH. A diamond dresser for easy disassembly.C.N. Patent 215825115U2022
    [Google Scholar]
  66. WuS. A diamond grinding wheel dressing structure.C.N. Patent 214642823U2021
    [Google Scholar]
  67. JiQ. A kind of diamond grinding wheel dresser.C.N. Patent 212444781U2021
    [Google Scholar]
  68. WuS. TanJ. TanW. YeC. A kind of diamond grinding wheel dresser.C.N. Patent 215357950U2021
    [Google Scholar]
  69. WangJ. YanW. SunG. A grinding machine diamond grinding wheel dressing device.C.N. Patent 108942681A2018
    [Google Scholar]
  70. LiC. Diamond grinding wheel dresser.C.N. Patent 200974191Y2007
    [Google Scholar]
  71. ZhangS.G.Z. Diamond grinding wheel dressing machine.C.N. Patent 219170587U2023
    [Google Scholar]
  72. YangL. PengH. A diamond grinding wheel dressing system.C.N. Patent 217668781U2022
    [Google Scholar]
  73. XinchengL. HaijiangF. ShuaiZ. FengdaZ. A diamond grinding wheel dressing tool for centerless grinding.C.N. Patent 210160962U2020
    [Google Scholar]
  74. HuangJ. A diamond grinding wheel device.C.N. Patent 208866993U2019
    [Google Scholar]
  75. BingC. JiaoH-W. LiangL. ZhaoQ. A device and method for precision in-situ dressing of resin-based V-shaped diamond grinding wheel.C.N. Patent 111571445A2008
    [Google Scholar]
  76. YingY. LinJ. PingC. ChenW. A kind of diamond grinding wheel dresser.C.N. Patent 217966572U2022
    [Google Scholar]
  77. ZhangL. ChenR. ZhanS. GuoG. LouD. A diamond roller grinding wheel dressing device.C.N. Patent 103495933A2014
    [Google Scholar]
  78. YeT. WangJ. A diamond grinding wheel dressing method.C.N. Patent 108838890A2018
    [Google Scholar]
  79. ChengG. TaoC. SuiY. YangH. A resin-based diamond grinding wheel in-situ dressing method.C.N. Patent 105415194A2016
    [Google Scholar]
  80. WangG. ZhaoC. WangY. A kind of diamond grinding wheel dressing machine.C.N. Patent 213703041U2021
    [Google Scholar]
  81. DingC. FengZ. JuanC. ChenY. ChengZ. A diamond grinding wheel dressing device.C.N. Patent 215789146U2022
    [Google Scholar]
  82. CongM. HuY. XiaoL. KunT. ZhangM. ZhangZ. YinL. Single-Point Dlamond Dresser for Drinding Wheel Based on Acoustic Emission Online Monitoring.U.S. Patent 20200147755A12020
    [Google Scholar]
  83. ChenG. HuiD. LingZ. XuJ. LiZ. BoY. A method for rough dressing of diamond grinding wheels.C.N. Patent 103042468A2013
    [Google Scholar]
  84. ChenG. WangD. JieH. A method of matrix parallel beam shaping and molding superabrasive grinding wheels.C.N. Patent 103802027A2014
    [Google Scholar]
  85. WuX. HuiY. Yang ZhiyongO. KunS. LianghuiD. A method to regulate the film formation performance of electrolytic oxide film for large particle size multilayer brazed diamond grinding wheels.C.N. Patent 110539250A2019
    [Google Scholar]
  86. QichengL.A.O. XiC. LiS. WangJ. ChenX. ZhenX. ZhangX. MengZ. Method, disk electrode used, and device for dressing diamond grinding wheels by EDM.C.N. Patent 103770006A2024
    [Google Scholar]
  87. ShaL. ShaC. LiZ. XuH. An EDM diamond grinding wheel dressing equipment.C.N. Patent 209007357U2019
    [Google Scholar]
  88. HuiD. ZhouX. A dressing method of circular diamond grinding wheel.C.N. Patent 110202478B2020
    [Google Scholar]
  89. HuaZ. WangR. WuQ. ZhangM. A method and device for online dressing of abrasive water jet for endface grinding wheel.C.N. Patent 112792739A2021
    [Google Scholar]
  90. YasuhiroK. Method and apparatus for dressing superabrasive grinding wheels.J.P. Patent 202350722A2023
    [Google Scholar]
  91. GongL. DuanW. LiH. WuZ. JiaJ. WenK. BaiQ. ZhaoS. A method of diamond grinding wheel dressing before roll grinding.C.N. Patent 111716252A2020
    [Google Scholar]
  92. YanW. Laser-assisted mechanical diamond grinding wheel dressing method based on fiber laser.C.N. Patent 101143429A2007
    [Google Scholar]
  93. ZhangF. YangQ. XuL. KaiW. LiuL. GuoW. ZhangJ. WenG. A kind of circular arc diamond grinding wheel EDM and mechanical composite dressing device.C.N. Patent 103522190A2014
    [Google Scholar]
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