Thermal simulation of the single discharge for electro-spark deposition diamond wire saw

被引:0
|
作者
Chengyun Li
Peiqi Ge
Wenbo Bi
机构
[1] Shandong University,School of Mechanical Engineering
[2] Key Laboratory of High-Efficiency and Clean Mechanical Manufacture at Shandong University,undefined
[3] Ministry of Education,undefined
关键词
Diamond wire saw; ESD; Surface heat source; Transient thermal analysis;
D O I
暂无
中图分类号
学科分类号
摘要
Due to their excellent physical and mechanical properties, third-generation super hard semiconductor materials (such as SiC, GaN) are widely used in the field of microelectronics. From the crystal bar to electronic devices, slicing is the first machining procedure that directly affects the subsequent process. Fixed diamond wire saw has been widely used in cutting hard and brittle materials. However, the diamond grits of wire saw are bonded through the binding agent’s mechanical embedding that slicing super hard crystal is very difficult and inefficient. In order to improve the slicing efficiency, it is necessary to improve the holding strength and wear resistance of the diamond wire saw. The electro-spark deposition (ESD) process can form metallurgical bonding between metal materials at low heat input. The holding strength and wear resistance of the diamond wire saw can be effectively improved. In this paper, the mechanism of the manufacturing process of ESD diamond wire saw (ESDDWS) is introduced, and the conditions of the manufacturing process of ESDDWS are put forward. A model of the surface heat source of saw wire is established considering the wire shape. The transient thermal analysis of the single discharge of ESDDWS is carried out in ANSYS, and the effect of material compaction on material physical properties is considered. According to the simulation results, the parameter range of the manufacturing process of ESDDWS is predicted. The predictions agreed with experiment observation.
引用
收藏
页码:3597 / 3604
页数:7
相关论文
共 50 条
  • [31] The Characterization of Running-In Coatings on the Surface of Tin Bronze by Electro-Spark Deposition
    Zhang, Zhengchuan
    Konoplianchenko, Ievgen
    Tarelnyk, Viacheslav
    Liu, Guanjun
    Du, Xin
    Yu, Hua
    COATINGS, 2022, 12 (07)
  • [32] Research on the Influence of Magnetic Field Assistance on the Quality of an Electro-Spark Deposition Layer
    Liu, Yu
    Zhang, Shiqi
    Shao, Weiqiang
    Wang, Ziguang
    Qu, Jiawei
    Zhou, Weiming
    Zhang, Shengfang
    COATINGS, 2025, 15 (01):
  • [33] Interface behavior of WC-4Co coating by electro-spark deposition
    Wang, Jian-Sheng (wjs1973425@126.com), 1600, Central South University of Technology (24):
  • [34] Oxidation, hot corrosion, and interdiffusion behavior of NiAlTa coating by electro-spark deposition
    Yang, Shuai
    Gao, Si-Yang
    Xue, Wei-Hai
    Wu, Bi
    Duan, De-Li
    RARE METALS, 2025,
  • [35] Microstructure and Tribological Properties of Stellite21 Coating by Electro-Spark Deposition
    Jing, Qifeng
    Tan, Yefa
    Ji, Huiyong
    Wang, Xiaolong
    Gao, Li
    Zhao, Wei
    APPLIED MATERIALS AND TECHNOLOGIES FOR MODERN MANUFACTURING, PTS 1-4, 2013, 423-426 : 939 - 943
  • [36] Production of amorphous and nanocrystalline iron based coatings by electro-spark deposition process
    Hasanabadi, M. Fakoori
    Ghaini, F. Malek
    Ebrahimnia, M.
    Shahverdi, H. R.
    SURFACE & COATINGS TECHNOLOGY, 2015, 270 : 95 - 101
  • [37] Features of parametric synthesis of the circuit of capacitor discharge on electro-spark load with nonlinear resistance
    Suprunovska, N.I.
    Technical Electrodynamics, 2014, (04): : 20 - 22
  • [38] Microstructure of Electro-Spark Deposition WC Coating on BT20 Titanium Alloy
    Wang Mingwei
    Pan Ren
    Li Shu
    Zhao Xiujun
    Zhu Zhi
    Zhang Liwen
    RARE METAL MATERIALS AND ENGINEERING, 2014, 43 (02) : 361 - 363
  • [39] Transients at changing the configuration of the discharge circuit of the capacitor of semiconductor electrical discharge installations with an electro-spark load
    Suprunovska N.I.
    Shcherba M.A.
    Mykhailenko V.V.
    Peretyatko Y.V.
    Technical Electrodynamics, 2020, 2020 (02): : 3 - 9
  • [40] Protection of a Ti3AI-Nb alloy by electro-spark deposition coating
    Li, ZW
    Gao, W
    He, YD
    SCRIPTA MATERIALIA, 2001, 45 (09) : 1099 - 1105