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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >An experimental investigation on micro-milling of polymethyl methacrylate components with nanometric surface roughness
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An experimental investigation on micro-milling of polymethyl methacrylate components with nanometric surface roughness

机译:纳米表面粗糙度的聚甲基丙烯酸甲酯成分微铣削的实验研究

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摘要

Micro-optical components made from polymethyl methacrylate are increasingly in demand. This article presents an experimental investigation into diamond micro-milling of polymethyl methacrylate components with nanometric surface roughness and its application perspectives. The experimental micro-milling trials with a chemical vapour deposition diamond ball endmill are conducted on a self-developed ultra-precision micro-milling machine (UltraMill) featuring high precision and high dynamic performance. Surface roughness of micro-milled slots using different micro-milling strategies is measured with white light interferometer. Results show that when feed and cutting orientations are perpendicular, smaller surface roughness can be obtained. Micro-milling is carried out on 2 × 2 mm~2 areas by applying different micromilling strategies and process parameters. The results demonstrate that the micro-milling strategy which can generate good surface roughness in slot micro-milling cannot produce expected surface roughness on such a large area (2 × 2 mm~2), and machining dynamics plays an important role. By applying two-way joint micro-milling strategy and adjusting process parameters, an optical surface is obtained with roughness of 8.717 nm.
机译:由聚甲基丙烯酸甲酯制成的微光学元件的需求日益增长。本文介绍了对具有纳米表面粗糙度的聚甲基丙烯酸甲酯组件进行金刚石微铣削的实验研究及其应用前景。在自行开发的具有高精度和高动态性能的超精密微铣床(UltraMill)上进行了化学气相沉积金刚石球立铣刀的实验性微铣试验。使用白光干涉仪测量使用不同微铣削策略的微铣槽的表面粗糙度。结果表明,当进给和切削方向垂直时,可以获得较小的表面粗糙度。通过应用不同的微铣削策略和工艺参数,在2×2 mm〜2的区域上进行微铣削。结果表明,在缝隙式微铣削中能产生良好表面粗糙度的微铣削策略无法在如此大的面积(2×2 mm〜2)上产生预期的表面粗糙度,而加工动力学起着重要作用。通过应用双向联合微铣削策略并调整工艺参数,可获得具有8.717 nm粗糙度的光学表面。

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