外文翻译---高速研磨技术的应用与展望
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1、 外文翻译 英文原文 : High-speed grinding -applications and future technology Abstract The basic mechanisms and the applications for the technology of high-speed grinding with CBN grinding wheels are presented. In addition to developments in process technology associated with high-speed machining, the grindi
2、ng machine, coolant system, and the grinding tool also need to adapt to high-speed machining. Work piece-related factors inurning the results of machining are also discussed. The paper concludes with a presentation of current research and future developments in the area of high-speed grinding, and t
3、he development of high-speed CBN camshaft grinding. All rights reserved. 1. Introduction More than 25 years of high-speed grinding have expanded the field of application for grinding from classical finish machining to high-performance machining. High-speed grinding offers excellent potential for goo
4、d component quality combined with high productivity. One factor behind the innovative process has been the need to increase productivity for conventional finishing processes. In the course of process development it has become evident that high-speed grinding in combination with preliminary machining
5、 processes close to the finished contour enables the configuration of new process sequences with high-performance capabilities. Using the appropriate grinding machines and grinding tools, it is possible to expand the scope of grinding to high-performance machining of soft materials. Initially, a bas
6、ic examination of process mechanisms is discussed that relates the configuration of grinding tools and the requirements of grinding soft materials. The effect of an effective and environmentally friendly coolant system is also investigated in addition to the effect of work piece-related variables on
7、 the suitability of using high-speed grinding techniques. 2. Theoretical basis of high-speed grinding In view of the random distribution of cutting edges and cutting-edge shapes, statistical methods are applied to analyses the cutting mechanism in grinding. The mean unreformed chip thickness, hcu, a
8、nd the mean chip length, lcu, are employed as variables to describe the shape of the chip. The unreformed chip thickness is dependent on the static density of cutting edges, Cstat, and on the geometric and kinematics variables 1,2: (1) where Vw is the work piece speed, VS the grinding wheel speed, a
9、e the depth of cut, deq the equivalent grinding wheel diameter, and , , are greater than zero. On the basis of this relationship, it can be established that an increase in the cutting speed, assuming all other conditions are constant, will result in a reduction in the unreformed chip thickness. The
10、work piece material is machined with a larger number of abrasive grain contacts. At the same time, the number of cutting edges involved in the process decreases. This leads to the advantages promised by high-speed grinding which is characterized by a reduction in grinding forces, grinding wheel wear
11、, and in work piece surface roughness. Consequently, increasing the speed of the grinding wheel can lead to an increase in the quality of the work piece material, or alternatively, an increase in productivity. The process technology depends on the characteristics and quality requirements of the work
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