Fuzzy contact and its effect on thermal damage in grinding processes

被引:1
作者
Qi, HS [1 ]
Rowe, WB
Mills, B
机构
[1] Univ Bradford, Dept Mech & Med Engn, Bradford BD7 1DP, W Yorkshire, England
[2] Liverpool John Moores Univ, Sch Engn, Liverpool L3 3AF, Merseyside, England
来源
ADVANCES IN ABRASIVE PROCESSES | 2001年 / 202-2卷
关键词
D O I
10.4028/www.scientific.net/KEM.202-203.15
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In abrasive machining processes, the contact between the abrasive tool and workpiece is very rough, which affects the cutting efficiency and surface integrity of the component machined. The contact behaviors between the grinding wheel and workpiece in grinding were investigated. The grinding forces, surface topography of the wheel and workpiece and the ratio of real contact area to apparent contact area in grinding contact zone were studied. It revealed the ambiguity in deciding the size of the contact region from a measured contact signal. For better represent this fuzzy contact phenomena, fuzzy set theory was used. A membership function for the fuzzy representation of the extent of wheel-workpiece contact was developed. The membership function was quantified using the measured contact signals and grinding theory. The fuzzy representation and membership function, as a case study, was used in the grinding thermal modeling. It showed that the predicted temperature from the new fuzzy thermal model was much closer to the real grinding temperature measured than from the conventional thermal model. This work shows how fuzzy theory make it possible to address problems that lie beyond the reach of traditional methods.
引用
收藏
页码:15 / 24
页数:10
相关论文
共 50 条
[41]   EFFECT OF THE ROUGHNESS OF THE CONTACT FACES OF A BIMETAL ON ITS THERMAL FATIGUE STRENGTH. [J].
Tron', A.S. ;
Zabashta, L.A. .
Metal Science and Heat Treatment (English Translation of Metallovedenie i Termicheskaya Obrabotka, 1982, 24 (9-10) :731-734
[42]   Contact resistance measurement and its effect on the thermal conductivity of packed sphere systems [J].
Siu, WWM ;
Lee, SH .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2004, 126 (06) :886-895
[43]   The thermal analysis of cutting/grinding processes by meshless finite block method [J].
Yang, J. J. ;
Wang, Z. X. ;
Adetoro, O. B. ;
Wen, P. H. ;
Bailey, C. G. .
ENGINEERING ANALYSIS WITH BOUNDARY ELEMENTS, 2019, 100 :68-79
[44]   THE FINITE-ELEMENT THERMAL-ANALYSIS OF GRINDING PROCESSES BY ADINA [J].
MAHDI, M ;
ZHANG, LC .
COMPUTERS & STRUCTURES, 1995, 56 (2-3) :313-320
[45]   Thermal performance of a radial-rotating oscillating heat pipe and its application in grinding processes with enhanced heat transfer [J].
Qian, Ning ;
Jiang, Fan ;
Marengo, Marco ;
Fu, Yucan ;
Xu, Jiuhua .
APPLIED THERMAL ENGINEERING, 2023, 233
[46]   Influences of Grinding Mark Roughness and Cross Marks on Rolling Contact Fatigue Damage of Rail [J].
Ding H. ;
Guo S. ;
Zhou S. ;
Guo J. ;
Liu Q. ;
Wang W. .
Mocaxue Xuebao/Tribology, 2021, 41 (06) :813-820
[47]   The effect of thermal contact resistance on effective contact temperature [J].
Sugai, K ;
Maekawa, H .
SEN-I GAKKAISHI, 2004, 60 (10) :287-292
[48]   Numerical modeling of the thermal contact in metal forming processes [J].
Martins, J. M. P. ;
Neto, D. M. ;
Alves, J. L. ;
Oliveira, M. C. ;
Menezes, L. F. .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2016, 87 (5-8) :1797-1811
[49]   Numerical modeling of the thermal contact in metal forming processes [J].
J. M. P. Martins ;
D. M. Neto ;
J. L. Alves ;
M. C. Oliveira ;
L. F. Menezes .
The International Journal of Advanced Manufacturing Technology, 2016, 87 :1797-1811
[50]   Modeling of thermal processes in the contact zones of fuel elements [J].
Kondratenko V.S. ;
Kadomkin V.V. ;
Tretiyakova O.N. .
Applied Physics, 2021, (06) :83-92