High Efficiency Deep Grinding, an Application with conventional wheels

被引:3
|
作者
Batako, Andre D. L. [1 ]
机构
[1] LJMU, Gen Engn Res Inst, Byrom St, Liverpool L3 3AF, Merseyside, England
基金
英国工程与自然科学研究理事会;
关键词
HEDG; Grinding temperature; Thermocouple; Grinding energy; control strategy; wheel wear;
D O I
10.1007/978-1-84996-432-6_21
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The recently emerged High Efficiency Deep Grinding (HEDG) allows the grinding process to be undertaken at high wheel speed, relatively large depth of cut and moderately high work speed. HEDG, whilst combining the mechanics of high-speed and creep feed grinding, offers the possibility of achieving very efficient grinding with values of specific energy approaching those of conventional cutting processes. HEDG requires a high power input and consequently needs a well-designed process to secure the work piece surface integrity, low temperature, and a reduced wear of the grinding wheel. The HEDG process necessitates an optimisation of the grinding parameters to achieve desirable results with minimum wheel wear. A poorly designed HEDG process causes abusive wear of the grinding wheel and leads to a damaged workpiece surface. This paper presents a thermal model that has been used to predict temperature in the HEDG process as a function of process parameters. The work explores an enhanced single-pole thermocouple technique that allows measuring contact temperature in deep cutting. A developed software that operates on the thermal model is used to implement a control strategy and to monitor the grinding process in real time. The results of the tests are presented in terms of measured and predicted temperatures and the specific energy. The paper also puts side by side the performance of metal bond CBN wheel and the high aspect ratio wheel.
引用
收藏
页码:93 / 96
页数:4
相关论文
共 50 条
  • [11] Temperature measurement in high efficiency deep grinding
    Batako, AD
    Rowe, WB
    Morgan, MN
    INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2005, 45 (11): : 1231 - 1245
  • [12] HIGH-EFFICIENCY WHEELS FOR PROFILE-GRINDING OF HIGH-SPEED STEELS
    ALIKHANYAN, ES
    SOVIET ENGINEERING RESEARCH, 1983, 3 (12): : 88 - 88
  • [13] EFFICIENCY OF CBN WHEELS FOR GRINDING INTRACTABLE STEELS
    IVANOV, YI
    SALOV, PM
    RUSSIAN ENGINEERING JOURNAL, 1974, 54 (11): : 71 - 72
  • [14] Comparative evaluation of the performance of conventional and superabrasive grinding wheels
    Estudo comparativo do desempenho de rebolos com grãos superabrasivos e convencionais
    Bianchi, E.C., 2001, University Federal de Uberlandia (10):
  • [15] DRESSING OF CONVENTIONAL GRINDING WHEELS USING PCD.
    Werner, P.Gunther
    Minke, E.
    SME Technical Paper (Series) MR, 1982,
  • [16] Grinding Characteristic Research of High Efficiency Deep Grinding for Viscous Material
    Sheng, Xiaomin
    Guo, Li
    Tang, Kun
    Mi, Haiqing
    Yu, Jianwu
    Chen, Tao
    ADVANCES IN ABRASIVE TECHNOLOGY XIII, 2010, 126-128 : 88 - 95
  • [17] Influence of grinding modes on the efficiency of the working of grinding wheels for manual machines
    Korotkov, A. N.
    Dubinkin, D. M.
    OBRABOTKA METALLOV-METAL WORKING AND MATERIAL SCIENCE, 2006, (02): : 26 - 28
  • [18] High efficiency deep grinding with very high removal rates
    Batako, Andre D. L.
    Morgan, M. N.
    Rowe, Brian W.
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2013, 66 (9-12): : 1367 - 1377
  • [19] High efficiency deep grinding with very high removal rates
    Andre D. L. Batako
    M. N. Morgan
    Brian W. Rowe
    The International Journal of Advanced Manufacturing Technology, 2013, 66 : 1367 - 1377
  • [20] Fabrication of nanoabrasive grinding wheels and their application to grinding silicon wafers
    Kim, T. W.
    Hyun, S. H.
    Kim, J.
    Lee, J. H.
    Lee, H. W.
    SCIENCE OF ENGINEERING CERAMICS III, 2006, 317-318 : 373 - 376