Investigation of Laser-Assisted Micro-Milling Process of Inconel 718

IF 3.3 Q2 ENGINEERING, MANUFACTURING Journal of Manufacturing and Materials Processing Pub Date : 2023-08-10 DOI:10.3390/jmmp7040149
Haijun Zhang, Fei Chen, Zengqiang Li, Wangjie Hu, T. Sun, Junjie Zhang
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Abstract

While Inconel 718 is a widely used engineering material in industrial fields such as the aerospace and automotive fields, the machined surface integrity has a significant effect on the performance of its components and parts. In this work, the laser-assisted micro-milling process of Inconel 718 is investigated using a combination of experiments and finite element simulations. Firstly, an experimental platform of laser-assisted milling is built, and a three-dimensional thermal–mechanical coupled finite element model of laser-assisted milling of Inconel 718 is then established. Secondly, laser-assisted milling experiments and finite element simulations are conducted to investigate the impact of laser assistance on cutting force, chip morphology, tool wear and surface topography of Inconel 718 under a milling process. The results indicate that laser-assisted milling results in a moderate reduction in cutting forces while enhancing surface integrity and chip continuity, as compared with ordinary milling. Thirdly, orthogonal experiments of laser-assisted milling of Inconel 718 are conducted to discover the optimal processing parameters, including spindle speed, feed per tooth, milling depth and laser parameters. Finally, single-factor experiments are conducted to investigate the effect of laser power on cutting force, chip morphology, tool wear, groove burr and surface roughness in the laser-assisted milling of Inconel 718. And, a minimal surface roughness Sa of 137 nm for Inconel 718 accompanied by minimal tool wear is experimentally obtained via laser-assisted milling. These findings highlight the effectiveness of applying laser assistance in enhancing the machinability of difficult-to-machine materials for achieving desirable machined surface integrity.
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Inconel 718合金激光辅助微细铣削工艺研究
虽然铬镍铁合金718是航空航天和汽车领域等工业领域中广泛使用的工程材料,但机加工表面的完整性对其零部件的性能有着重要影响。本文采用实验和有限元模拟相结合的方法研究了Inconel 718的激光辅助微铣削工艺。首先,建立了激光辅助铣削实验平台,建立了Inconel 718合金激光辅助铣削的三维热-机械耦合有限元模型。其次,通过激光辅助铣削实验和有限元模拟,研究了激光辅助对铬镍铁合金718在铣削过程中的切削力、切屑形态、刀具磨损和表面形貌的影响。结果表明,与普通铣削相比,激光辅助铣削可适度降低切削力,同时增强表面完整性和切屑连续性。再次,对Inconel 718合金进行了激光辅助铣削的正交实验,找出了最佳的加工参数,包括主轴速度、每齿进给量、铣削深度和激光参数。最后,通过单因素实验研究了激光辅助铣削铬镍铁合金718时,激光功率对切削力、切屑形态、刀具磨损、凹槽毛刺和表面粗糙度的影响。并且,通过激光辅助铣削实验获得了铬镍铁合金718的137nm的最小表面粗糙度Sa,伴随着最小的工具磨损。这些发现突出了应用激光辅助增强难以加工材料的可加工性的有效性,以实现所需的加工表面完整性。
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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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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