Simulated and measured surface roughness in high-speed grinding of silicon carbide wafers

被引:0
|
作者
Shanshan Chen
Chifai Cheung
Chenyang Zhao
Feihu Zhang
机构
[1] Harbin Institute of Technology,School of Mechatronics Engineering
[2] The Hong Kong Polytechnic University,Partner State Key Laboratory of Ultraprecision Machining Technology, Department of Industrial and Systems Engineering
关键词
Silicon carbide; Grinding; Surface generation; Modelling; Simulation; Micro-vibration;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, the primary factors affecting surface quality are studied and a theoretical model is developed for surface generation in grinding silicon carbide (SiC). The model takes into account the geometrical kinematics and tool micro-vibration in the grinding operation. The simulated roughness profiles agree reasonably well with experimental results. Spectrum analysis was used to extract three different frequencies from the machined surface topography in the frequency domain: figure error, micro-vibration of the wheel, and workpiece. The wheel synchronous micro-vibration is found to be the dominant mechanism for surface generation. The pattern of vibration marks is found to be dependent on the feed rate and the ratio of the rotational speed of the grinding wheel and the workpiece. In addition, the phase shift denoted in the fractional part of the speed ratio is inevitably induced in the evolution of surface generation in the grinding, which imposes a remarkable effect on surface quality. For a non-integral speed ratio (1500 RPM for the workpiece spindle), the arithmetical mean height of the surface (Sa) is significantly improved to about 0.108 μm. A medium phase shift (about 0.5) can suppress the scallop height so as to achieve a good surface finish (Sa = 0.091 μm). The results provide important means for improving the surface quality in ultra-precision grinding.
引用
收藏
页码:719 / 730
页数:11
相关论文
共 50 条
  • [31] HIGH-SPEED PLUNGE GRINDING
    不详
    MANUFACTURING ENGINEERING, 1979, 82 (06): : 67 - 69
  • [32] HIGH-SPEED GRINDING OF CAMSHAFTS
    KALKERT, W
    HALLERBA.E
    MACHINERY AND PRODUCTION ENGINEERING, 1969, 115 (2967): : 515 - &
  • [33] Material removal and surface damage in high-speed grinding of enamel
    Wu, Shi-Xiong
    Gong, Xiang
    Ni, Yong-Qian
    Chen, Wang-Lin
    Wang, Cheng-Yong
    JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2022, 136
  • [34] Surface generation in high-speed grinding of brittle and tough ceramics
    Choudhary, Amit
    Paul, Soumitra
    CERAMICS INTERNATIONAL, 2021, 47 (21) : 30546 - 30562
  • [35] Thermohydrodynamic analysis of high-speed journal bearings with surface roughness
    Hashimoto, H
    JOURNAL OF TRIBOLOGY-TRANSACTIONS OF THE ASME, 1996, 118 (03): : 698 - 701
  • [36] Thermohydrodynamic analysis of high-speed journal bearings with surface roughness
    Department of Mechanical Engineering, Tokai University, 1117 Kitakaname, Hiratsuka, Kanagawa, 259-12, Japan
    不详
    Journal of Tribology, 1996, 118 (03): : 698 - 701
  • [37] Surface roughness effects in high-speed hydrodynamic journal bearings
    Hashimoto, H
    JOURNAL OF TRIBOLOGY-TRANSACTIONS OF THE ASME, 1997, 119 (04): : 776 - 780
  • [38] Simulation of surface roughness and profile in high-speed end milling
    Lee, KY
    Kang, MC
    Jeong, YH
    Lee, DW
    Kim, JS
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2001, 113 (1-3) : 410 - 415
  • [39] Fabrication of wear-resistant silicon microprobe tips for high-speed surface roughness scanning devices
    Wasisto, Hutomo Suryo
    Yu, Feng
    Doering, Lutz
    Voellmeke, Stefan
    Brand, Uwe
    Bakin, Andrey
    Waag, Andreas
    Peiner, Erwin
    SMART SENSORS, ACTUATORS, AND MEMS VII; AND CYBER PHYSICAL SYSTEMS, 2015, 9517
  • [40] High-Speed End Electric Discharge Milling of Silicon Carbide Ceramics
    Ji, Renjie
    Liu, Yonghong
    Zhang, Yanzhen
    Cai, Baoping
    Li, Xiaopeng
    MATERIALS AND MANUFACTURING PROCESSES, 2011, 26 (08) : 1050 - 1058