A grinding force model and surface formation mechanism of cup wheels considering crystallographic orientation

被引:9
|
作者
Li, Gan [1 ]
Kang, Renke [1 ]
Wang, Hao [1 ]
Dong, Zhigang [1 ]
Bao, Yan [1 ]
机构
[1] Dalian Univ Technol, State Key Lab High performance Precis Mfg, Dalian 116024, Peoples R China
基金
中国国家自然科学基金;
关键词
Tungsten heavy alloy; Cup wheel; Micro grinding; Grinding force; Crystallographic orientation; Flow stress; TUNGSTEN HEAVY ALLOY; STRAIN-RATE; MATERIAL REMOVAL; TEMPERATURE; DEFORMATION; COMPOSITES; PREDICTION; STRENGTH; BEHAVIOR; DAMAGE;
D O I
10.1016/j.jmatprotec.2023.118187
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
As typical two-phase materials, tungsten heavy alloys (WHAs) are widely used in industry owing to their excellent mechanical properties, which also challenge high-quality machining. Grinding can lead to a better machining quality. Prediction and evaluation of grinding forces are essential for grinding quality control and process optimization. This study proposes a flow stress model for the WHA considering the strain hardening, strain rate hardening, and thermal softening effects. The difference between the two phases of WHA was confirmed by calculating the Taylor factors, where the average Taylor factor of the W phase was 3.011 and that of the matrix phase was 3.414. Therefore, dislocations are more likely to be generated and aggregated in the matrix phase during grinding process. The mechanism of subsurface formation during the grinding of WHA was analyzed by transmission electron microscopy. The results show that the plastic deformation layer consists of the fine grain layer, the high density dislocation zone and the substrate. A grinding force model for cup wheels in the vertical-spindle face grinding of WHA considering the grain orientation was developed, and the error between the model and experimental value was within 10%. This model can provide an in-depth understanding of the effects caused by the difference between the two phases during the grinding process, thus provide a theoretical basis for the realization of efficient and low-damage grinding of WHA and other composite materials.
引用
收藏
页数:23
相关论文
共 50 条
  • [1] Theoretical Analysis and Experimental Validation of Micro-grinding Force Considering the Effect of Crystallographic Orientation
    Mao, Jian
    Zhao, Man
    Zhang, Liqiang
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2021, 57 (05): : 262 - 272
  • [2] SURFACE GRINDING OF WANKEL TROCHOID HOUSINGS WITH DIAMOND CUP WHEELS
    NOTTER, AT
    INDUSTRIAL DIAMOND REVIEW, 1975, (APR): : 139 - 141
  • [3] THROUGH-FEED SURFACE GRINDING WITH CBN CUP WHEELS
    ABPLANALP, H
    LEUTWYLER, H
    INDUSTRIAL DIAMOND REVIEW, 1980, (OCT): : 378 - 379
  • [4] SURFACE GRINDING OF ALUMINUM SILICON ALLOYS WITH DIAMOND CUP WHEELS
    NOTTER, AT
    MEYER, MA
    INDUSTRIAL DIAMOND REVIEW, 1974, (JAN): : 4 - 11
  • [5] Study of Surface of Edge Grinding of Ceramic Tile by Diamond Cup Wheels
    Cheng, Yunping
    Wang, Chengyong
    Hu, Yingning
    Si, Weizheng
    SURFACE FINISHING TECHNOLOGY AND SURFACE ENGINEERING II, 2010, 135 : 277 - +
  • [6] SURFACE GRINDING OF ALUMINIUM/SILICON ALLOYS WITH DIAMOND CUP WHEELS.
    Notter, A.T.
    Meyer, M.A.
    Industrial Diamond Review, 1974, : 4 - 11
  • [7] Micro-grinding temperature prediction considering the effects of crystallographic orientation
    Zhao, Man
    Ji, Xia
    Liang, Steven Y.
    MANUFACTURING REVIEW, 2019, 6
  • [8] Grinding Force and Surface Formation Mechanisms of 17CrNi2MoVNb Alloy When Grinding with CBN and Alumina Wheels
    Jiang, Xiaoyang
    Liu, Ke
    Si, Mingda
    Li, Maojun
    Gong, Pan
    MATERIALS, 2023, 16 (04)
  • [9] Effect of grinding depth on surface topography by considering vibrations and a force prediction model
    Kang M.
    Zhang L.
    Tang W.
    International Journal of Mechatronics and Manufacturing Systems, 2019, 12 (02): : 73 - 95
  • [10] High-precision surface grinding of ceramics with superfine grain diamond cup wheels
    Matsuo, T
    Touge, M
    Yamada, H
    CIRP ANNALS 1997 MANUFACTURING TECHNOLOGY, VOLUME 46/1/1997: ANNALS OF THE INTERNATIONAL INSTITUTION FOR PRODUCTION ENGINEERING RESEARCH, 1997, 46 : 249 - 252