Ultra-precision machining process of inner surface considering shear-thickening polishing method

Luguang Guo, Xu Wang, B. Lyu, Jianbiao Lyu, Jinhu Wang, Hongyu Chen, Wenhong Zhao, Julong Yuan
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Abstract

Shear-thickening polishing (STP) is a non-traditional flexible ultra-precision processing method that exploits the polishing fluid’s shear-thickening properties to create a shear rate between the workpiece surface and the potential flow. This increases viscosity and achieves material removal. In the past, the shear-thickening polishing method was mostly employed for the outer surface of rotating bodies. Nevertheless, to apply the STP method to ultra-precision processing of the workpiece’s inner surface, this paper proposes an active formed shear-thickening layer polishing method based on a numerical calculation model. Additionally, the main parameters affecting the machining efficiency were identified, orthogonal experiments were performed on the process parameter levels, and optimal machining conditions were derived. The optimized process was adopted to machine the inner surface of the large-size bearing ring, and the surface roughness in terms of Ra was reduced from the original 131.27 to 27.14 nm in 30 min and further to 19.52 nm in 60 min. The validation experiments highlight that the numerical model can predict the experimental results accurately, demonstrating the proposed method’s feasibility for ultra-precision machining on the inner surface with the STP method.
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采用剪切增厚抛光法的内表面超精密加工工艺
剪切增稠抛光(STP)是一种非传统的灵活超精密加工方法,它利用抛光液的剪切增稠特性,在工件表面和潜在流动之间产生剪切率。从而增加粘度,实现材料去除。过去,剪切增厚抛光法主要用于旋转体的外表面。然而,为了将 STP 方法应用于工件内表面的超精密加工,本文提出了一种基于数值计算模型的主动成型剪切增厚层抛光方法。此外,还确定了影响加工效率的主要参数,对工艺参数水平进行了正交实验,并得出了最佳加工条件。采用优化后的工艺加工大尺寸轴承套圈内表面,表面粗糙度(Ra)在 30 分钟内从原来的 131.27 nm 降低到 27.14 nm,在 60 分钟内进一步降低到 19.52 nm。验证实验表明,数值模型可以准确预测实验结果,证明了所提出的方法在利用 STP 方法对内表面进行超精密加工方面的可行性。
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来源期刊
CiteScore
5.10
自引率
30.80%
发文量
167
审稿时长
5.1 months
期刊介绍: Manufacturing industries throughout the world are changing very rapidly. New concepts and methods are being developed and exploited to enable efficient and effective manufacturing. Existing manufacturing processes are being improved to meet the requirements of lean and agile manufacturing. The aim of the Journal of Engineering Manufacture is to provide a focus for these developments in engineering manufacture by publishing original papers and review papers covering technological and scientific research, developments and management implementation in manufacturing. This journal is also peer reviewed. Contributions are welcomed in the broad areas of manufacturing processes, manufacturing technology and factory automation, digital manufacturing, design and manufacturing systems including management relevant to engineering manufacture. Of particular interest at the present time would be papers concerned with digital manufacturing, metrology enabled manufacturing, smart factory, additive manufacturing and composites as well as specialist manufacturing fields like nanotechnology, sustainable & clean manufacturing and bio-manufacturing. Articles may be Research Papers, Reviews, Technical Notes, or Short Communications.
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