通过混合纹理加工和冲击强化实现高速钢刀具性能的可持续加工

IF 0.4 Q4 ENGINEERING, MECHANICAL Journal of Machinery Manufacture and Reliability Pub Date : 2024-05-27 DOI:10.1134/S1052618824700134
K. Nagendra Prasad, Syed Ismail, M. Satish
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引用次数: 0

摘要

摘要表面纹理加工是一种很有前途的可持续技术,可提高切削工具的加工性能。激光表面纹理加工和微电火花加工是最常用的制造技术,与传统刀具相比,纹理加工刀具具有更好的刀具性能。然而,这些工艺涉及材料表面的分解,导致表面软化和表面硬度降低。在本研究中,通过使用激光烧蚀和微电火花加工方法在高速钢(HSS)前刀面上制造混合纹理(微凹槽),然后使用无烧蚀涂层激光冲击强化(LSPWAC)工艺,对高速钢(HSS)刀具的切削性能进行了研究。混合纹理冲击强化高速钢刀具用于 316 L 不锈钢的正交干车削。结果表明,混合纹理与冲击强化高速钢刀具的刀具寿命分别比传统刀具和混合纹理(HT)刀具高出 255% 和 85%。结果表明,与单纯的表面纹理加工方法相比,先进行表面纹理加工再进行冲击强化是一种创新方法,可提高加工过程的可持续性。此外,还通过有限元分析研究了切屑分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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High Speed Steel Tool Performance through Hybrid Texturing Followed by Shock Peening towards Sustainable Machining

Surface texturing is a promising sustainable technique to get better the machining performance of cutting tools. Laser surface texturing and micro-EDM are the most commonly used fabrication techniques and the textured tools exhibit better tool performance as compared to conventional tool. However, these processes involve resolidification of material surface which makes the surface softening and reduction in the surface hardness. In the present work, cutting performance of the high-speed steel (HSS) tool is studied by fabricating hybrid (microgrooves with dimples) textures on its rake face using both laser ablation and micro-EDM methods followed by laser shock peening without ablative coating (LSPWAC) process. Hybrid textured with shock peened HSS tools are used in orthogonal dry turning of 316 L stainless steel. It has been observed that hybrid textures with shock peened HSS tool exhibits higher tool life of up to 255 and 85% than the conventional and the hybrid textured (HT) tools respectively. The results shown that surface texturing followed by shock peening is an innovative method to improve the sustainability in machining process than only surface texturing method. Moreover, analysis of chip is studied by finite element analysis.

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来源期刊
CiteScore
0.80
自引率
33.30%
发文量
61
期刊介绍: Journal of Machinery Manufacture and Reliability  is devoted to advances in machine design; CAD/CAM; experimental mechanics of machines, machine life expectancy, and reliability studies; machine dynamics and kinematics; vibration, acoustics, and stress/strain; wear resistance engineering; real-time machine operation diagnostics; robotic systems; new materials and manufacturing processes, and other topics.
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