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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture >Analysis of surface generation in ultra-precision machining with a fast tool servo
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Analysis of surface generation in ultra-precision machining with a fast tool servo

机译:快速刀具伺服的超精密加工中的表面生成分析

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摘要

The fast tool servo (FTS) is one of the emerging ultra-precision machining technologies for the fabrication of high-quality optical microstructural surfaces. The diamond tool is fixed on the FTS, which is activated back and forth by a stacked type piezoelectric actuator. Optical microstructures with sub-micrometre form accuracy and nanometric surface finish can be fabricated without the need for any subsequent post processing. However, current understanding of the cutting mechanics and the factors affecting the surface generation in FTS machining is still far from complete. Although there has been some research work conducted to fill the research gaps with respect to FTS machining, most of the previous studies have been focused on the design of FTS for better performance and modelling characteristic of FTS actuators. The study of the process factors affecting surface generation in FTS machining has received little attention. As a result, this paper aims to analyse the effects of process parameters on surface generation in FTS machining. The factors being studied include spindle speed, feed rate, and depth of cut. A series of cutting experiments was carried out under various cutting conditions and the surface quality of the workpiece in terms of the form error and form defects were studied. Based on the results of the investigation, some recommendations for optimizing surface quality in the FTS machining process are discussed.
机译:快速工具伺服系统(FTS)是用于制造高质量光学微结构表面的新兴超精密加工技术之一。金刚石工具固定在FTS上,并通过堆叠式压电致动器来回激活。可以制造具有亚微米级形状精度和纳米级表面光洁度的光学微结构,而无需任何后续的后处理。但是,目前对切削力学以及影响FTS加工中表面生成的因素的了解还远远不够。尽管已经进行了一些研究工作来填补FTS加工方面的研究空白,但先前的大多数研究都集中在FTS的设计上,以提高FTS执行器的性能和建模特性。对FTS加工中影响表面生成的工艺因素的研究很少受到关注。因此,本文旨在分析FTS加工中工艺参数对表面生成的影响。研究的因素包括主轴速度,进给速度和切削深度。在不同的切削条件下进行了一系列切削实验,并从形状误差和形状缺陷方面研究了工件的表面质量。根据调查结果,讨论了一些有关在FTS加工过程中优化表面质量的建议。

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