Experimental Study on Heat Transfer Performance of Heat Pipe Grinding Wheel in High Efficiency Grinding

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  • 1. College of Mechanical and Electrical Engineering, Henan University of Technology, Zhengzhou 450007, China; 2. College of Mechanical and Electrical Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China

Online published: 2017-11-30

Abstract

According to the problems of low machining efficiency and thermal damage caused by high grinding temperature for difficult-to-cut materials with high strength and toughness, a new method of improving heat transfer capacity of grinding wheel by virtue of heat pipe technology was proposed to enhance heat exchange at the contact zone and avoid high grinding temperature. On the basis of the structure of heat pipe grinding wheel and its heat transfer principle, experimental device and test method were designed and set up to investigate the heat transfer performance of heat pipe grinding wheel. Moreover, the effects of wheel speed, working fluid property, heat flux input at the evaporator, cooling condition at the condenser and liquid film thickness on heat transfer capacity and starting characteristic of heat pipe grinding wheel were analyzed. The results show that heat pipe grinding wheel can significantly increase heat exchange at the contact zone. Besides, the test method for heat pipe grinding wheel can accurately evaluate the effects of various factors on its heat transfer performance and is suitable for prediction of its heat transfer capacity.

Cite this article

HE Qingshan1,FU Yucan2,CUI Zhongming1,CHEN Jiajia2 . Experimental Study on Heat Transfer Performance of Heat Pipe Grinding Wheel in High Efficiency Grinding[J]. Journal of Shanghai Jiaotong University, 2017 , 51(11) : 1355 -1360 . DOI: 10.16183/j.cnki.jsjtu.2017.11.011

References

[1]GVINIASHVILI V K, WOOLLEY N H, ROWE W B. Useful coolant flowrate in grinding[J]. International Journal of Machine Tools and Manufacture, 2004, 44(6): 629-636. [2]AURICH J C, KIRSCH B. Improved coolant supply through slotted grinding wheel[J]. CIRP Annals-Manufacturing Technology, 2013, 62(1): 363-366. [3]霍文国,徐九华,傅玉灿,等. 自润滑金属结合剂CBN砂轮干式磨削特性分析[J]. 中国机械工程,2012,23(23): 2773-2777. HUO Wenguo, XU Jiuhua, FU Yucan, et al. Characteristic analysis of self-lubricantion metal bonded CBN wheel during dry grinding[J]. China Mechanical Engineering, 2012, 23(23): 2773-2777. [4]PAL B, CHATTOPADHYAY A K, CHATTOPADHYAY A B. Development and performance evaluation of monolayer brazed cBN grinding wheel on bearing steel[J]. International Journal of Advanced Manufacturing Technology, 2010, 48(9-12): 935-944. [5]LIANG L, QUAN Y M, KE Z Y. Investigation of tool-chip interface temperature in dry turning assisted by heat pipe cooling[J]. International Journal of Advanced Manufacturing Technology, 2011, 54(1-4): 35-43. [6]马可. 基于热管技术的磨削弧区强化换热基础研究[D]. 南京: 南京航空航天大学机电学院,2011. [7]赫青山,傅玉灿,徐鸿钧,等. TC4钛合金高效磨削加工用环形热管砂轮的研制[J]. 航空学报,2013,34(7): 1740-1747. HE Qingshan, FU Yucan, XU Hongjun, et al. Development of annular heat pipe grinding wheel for high efficiency machining of TC4 titanium alloy[J]. Acta Aeronautica et Astronautica Sinica, 2013, 34(7): 1740-1747. [8]HE Q S, FU Y C, XU H J, et al. Investigation of a heat pipe cooling system in high-efficiency grinding[J]. International Journal of Advanced Manufacturing Technology, 2014, 70(5/8): 833-842.
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