Mechanism of Chip Formation Process at Grinding

被引:0
|
作者
Shumyacher, Vyacheslav [1 ]
Kryukov, Sergey [1 ]
Kulik, Olga [1 ]
Kennedy, Xavier [2 ]
机构
[1] Volgograd State Tech Univ, Volzhsky Polytech Inst Branch, Engelsa St 42a, Volzhsky 404121, Volgograd Regio, Russia
[2] Carborundum Universal Ltd, 655 TH Rd, Thiruvottiyur Chennai 600019, India
关键词
D O I
10.1051/matecconf/201929709002
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The mechanism of chip formation process at grinding is described, which involves a high-speed interaction of abrasive grain and metal, which leads to a concentration of thermal energy in front of the dispersing element (grain), causing a locally concentrated shift in the metal microvolume. In "abrasive grain - metal" contact a dissipative structure is formed which existence is supported by exchange of energy and substance with environment. Due to shock compression of the metal microvolume with abrasive grain, shock-wave heating is realized, initiating emission of electrons ionizing the lubricating cooling fluid in the zone of formation of side micro -scratches left by abrasive. The results obtained in the course of the research can be used to explain the mechanisms of chip formation, as well as the course of the physical and mechanical processes occurring on the surface layers of the grinded workpieces. By controlling chip formation processes at high-speed grinding, by optimally selecting the appropriate ratios between cutting speed and other processing parameters, a reduction in process thermal density can be achieved, which, with the highest productivity, will allow to obtain the required quality of the surface layer of the workpieces and a given dimensional accuracy.
引用
收藏
页数:5
相关论文
共 50 条
  • [31] AN EQUIVALENT CHIP COEFFICIENT TOWARDS AN ADAPTIVE CONTROLLED GRINDING PROCESS
    YOUNIS, MA
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART B-JOURNAL OF ENGINEERING MANUFACTURE, 1990, 204 (01) : 61 - 70
  • [32] A new chip thickness model for performance assessment of grinding process
    Kumawat, M
    Gopal, AV
    Rao, PV
    COMPUTER-AIDED PRODUCTION ENGINEERING, 2001, : 173 - 180
  • [33] Chip formation and similarity in the plano-grinding of explosive surrogates
    Jackson, Mark J.
    Nelson, Jameson K.
    Whitfield, Michael D.
    Morrell, Jonathan S.
    Handy, Rodney G.
    Schmidt, Peter L.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART B-JOURNAL OF ENGINEERING MANUFACTURE, 2018, 232 (12) : 2071 - 2082
  • [34] EFFECT OF OXYGEN AND WATER ON DYNAMICS OF CHIP FORMATION DURING GRINDING
    DUWELL, EJ
    HONG, IS
    MCDONALD, WJ
    ASLE TRANSACTIONS, 1969, 12 (01): : 86 - &
  • [35] Process mechanism in shape adaptive grinding (SAG)
    Beaucamp, Anthony
    Namba, Yoshiharu
    Charlton, Phillip
    CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2015, 64 (01) : 305 - 308
  • [36] Mechanism of surface formation for natural granite grinding
    Shen, JY
    Lin, W
    Ohmori, H
    Xu, XP
    ADVANCES IN GRINDING AND ABRASIVE TECHNOLOGY XIII, 2006, 304-305 : 161 - 165
  • [37] The formation mechanism and physical simulation of chip
    Wang, X
    Liu, HX
    Yang, RD
    Wu, B
    Cai, L
    PROGRESS OF MACHINING TECHNOLOGY, 2004, : 814 - 818
  • [38] Mechanism of serrated chip formation in cutting process using digital image correlation technique
    Xu, Wen-Jie
    Zhang, Xiao-Ming
    Leopold, Jurgen
    Ding, Han
    16TH CIRP CONFERENCE ON MODELLING OF MACHINING OPERATIONS (16TH CIRP CMMO), 2017, 58 : 146 - 151
  • [39] Formation and growing up process of grinding burrs
    Kawamura, Suehisa, 1600, (23):
  • [40] FORMATION AND GROWING UP PROCESS OF GRINDING BURRS
    KAWAMURA, S
    YAMAKAWA, J
    BULLETIN OF THE JAPAN SOCIETY OF PRECISION ENGINEERING, 1989, 23 (03): : 194 - 199