Theoretical modeling and simulation of airflow field near grinding wheel

被引:0
|
作者
Han, Z.L. [1 ]
Li, C.H. [1 ]
机构
[1] School of Mechanical Engineering, Qingdao Technological University, 266033, China
来源
关键词
Air flow fields - Airbond - Concentric circles - Grinding temperatures - Machining Accuracy - Negative pressures - Processing condition - Theoretical modeling;
D O I
暂无
中图分类号
学科分类号
摘要
During the grinding, the principal axis drives the grinding wheel to rotate at a high speed, which generates disturbance to the air flows around the grinding wheel. Therefore, a layer of air boundary can be formed on the surface of the working grinding wheel, which is the airflow field. Airflow field not only affects the machining accuracy of the workpiece and the enhanced abrasion of grinding wheel, but also prevents the efficient injection of the grinding fluid into the grinding zone. These processing conditions and lead to the increasing grinding force and rising grinding temperature, deteriorating the processing quality and surface integrity of the workpiece. With higher rotation speed of grinding wheel, the airbond of the air flow will be greater. And the grinding fluid will be harder to break through the airbond and be supplied to the grinding zone. In this study, on the basis of theoretical analysis on the airflow field of grinding wheel, a mathematical model was established, including the internal and external pressure differences of the airflow field, the airbond thickness δ, fluid density ρ, radius R and radius ω. In addition, the changing rules of airflow field along the grinding wheel were studied based on simulation tests. Results demonstrate that the tested airflow field presented the same pressure in concentric circles of the grinding wheel. Along the surface outer normal direction, the pressure value gradually decreased from the outer to the inner space, presenting negative pressure gradient. The velocity of the airflow field around the grinding wheel reduced as the distance from the wheel increased. To a certain thickness, the velocity became zero, which verified the existence of the boundary layer.
引用
收藏
页码:145 / 156
相关论文
共 50 条
  • [1] Theoretical analysis and simulation of airflow of super high-speed grinding wheel
    Gong, Y.D.
    Li, H.
    Cai, G.Q.
    Key Engineering Materials, 2007, 329 : 507 - 510
  • [2] Mathematical Modeling and Simulation of Fluid Velocity Field in Grinding Zone with Smooth Grinding Wheel
    Li, Changhe
    Hou, Yali
    Li, Jingyao
    Han, Zhenlu
    Ding, Yucheng
    ADVANCED SCIENCE LETTERS, 2011, 4 (6-7) : 2468 - 2473
  • [3] Modeling of Virtual Grinding Wheel and Its Grinding Simulation
    Wang, Wanshan
    Su, Chong
    Yu, Tianbiao
    Zhu, Lida
    ADVANCES IN GRINDING AND ABRASIVE TECHNOLOGY XV, 2009, 416 : 216 - 222
  • [4] Optical glass grinding wheel modeling and grinding simulation technology
    Wang, Zhibin
    Jiao, Mingyin
    Zhang, Feng
    Zhang, Yunlong
    Zhang, Zheng
    FOURTH INTERNATIONAL CONFERENCE ON PHOTONICS AND OPTICAL ENGINEERING, 2021, 11761
  • [5] Theoretical analysis of surface grinding temperature field by cup wheel
    Lin, B
    Yuan, QH
    Zhang, HL
    Zhang, JG
    Chen, SH
    Guo, WJ
    ADVANCES IN GRINDING AND ABRASIVE PROCESSES, 2004, 259-2 : 254 - 258
  • [6] Theoretical analysis of temperature field in surface grinding with cup wheel
    Lin, B
    Zhang, HL
    ADVANCES IN ABRASIVE PROCESSES, 2001, 202-2 : 93 - 98
  • [7] Theoretical modeling and experimental study on grinding force of straight groove structured grinding wheel
    Yi, Jun
    Yi, Tao
    Deng, Hui
    Chen, Bing
    Zhou, Wei
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2023, 124 (10): : 3407 - 3421
  • [8] Theoretical modeling and experimental study on grinding force of straight groove structured grinding wheel
    Jun Yi
    Tao Yi
    Hui Deng
    Bing Chen
    Wei Zhou
    The International Journal of Advanced Manufacturing Technology, 2023, 124 : 3407 - 3421
  • [9] Modeling and numerical simulation of temperature field in grinding WC-Co coating by cup wheel
    Wu, Q.
    Luo, Y. M.
    Hu, D. J.
    Xu, H. J.
    CURRENT DEVELOPMENT IN ABRASIVE TECHNOLOGY, PROCEEDINGS, 2006, : 17 - +
  • [10] Modeling and simulation of grinding surface topography considering wheel vibration
    Yanlong Cao
    Jiayan Guan
    Bo Li
    Xiaolong Chen
    Jiangxin Yang
    Chunbiao Gan
    The International Journal of Advanced Manufacturing Technology, 2013, 66 : 937 - 945