Experimental investigation on the efficiency of the wrap around nozzle as coolant delivering system for ultra high speed grinding

IF 1 4区 工程技术 Q4 ENGINEERING, MECHANICAL International Journal of Surface Science and Engineering Pub Date : 2020-03-10 DOI:10.1504/ijsurfse.2020.10027544
N. Moussa, F. Ghanem, N. B. Salah, N. Fredj
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引用次数: 1

Abstract

In recent years, attention has been given to develop efficient and optimised cooling systems for grinding to reduce the process cost and to limit the health hazards of operators. In ultra-high speed grinding this issue is particularly complex because the thick air barrier rotating with the grinding wheel prevents the fluid from reaching the grinding zone. In this paper, results of experiments conducted to characterise the application of the wrap around nozzle (WRN) to the ultra high speed plunge surface grinding are presented. Experiments were conducted in a peripheral wheel speed ranging from 50 to 380 m/s and the effects of the nozzle position. This efficiency was compared to a cooling system composed of double air scrapper and a conventional jet type system. Experiments showed that the WRN has higher and much stable cooling efficiency in the ultra-high-speed range of the grinding wheel.
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超高速磨削冷却剂包绕喷嘴输送系统效率的实验研究
近年来,人们一直关注于开发高效和优化的磨削冷却系统,以降低工艺成本并限制操作人员的健康危害。在超高速磨削中,这个问题特别复杂,因为与砂轮一起旋转的厚气障阻止了流体到达磨削区。本文介绍了缠绕喷嘴(WRN)在超高速切入面磨削中的应用实验结果。实验在外围轮速50 ~ 380 m/s范围内,对喷嘴位置的影响进行了研究。将该效率与双空气刮板冷却系统和传统射流冷却系统进行了比较。实验表明,WRN在砂轮超高速范围内具有较高且稳定的冷却效率。
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来源期刊
CiteScore
1.60
自引率
25.00%
发文量
21
审稿时长
>12 weeks
期刊介绍: IJSurfSE publishes refereed quality papers in the broad field of surface science and engineering including tribology, but with a special emphasis on the research and development in friction, wear, coatings and surface modification processes such as surface treatment, cladding, machining, polishing and grinding, across multiple scales from nanoscopic to macroscopic dimensions. High-integrity and high-performance surfaces of components have become a central research area in the professional community whose aim is to develop highly reliable ultra-precision devices.
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