Cutting Finite Element Simulation of Quenched Steel GCr15 Based on ABAQUS

Q4 Engineering
Lin Yang, Junhao Gong, Jialiang Liu, Jianqiu Xia, Yu Zhang
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引用次数: 0

Abstract

The substantial cutting force and elevated cutting temperature during the machining of hardened steel GCr15 exacerbate tool wear. In this study, the influence of cutting parameters on cutting force and cutting temperature in the process of hard-cutting GCr15 was studied, the cutting parameters were optimized, and the cutting force and cutting temperature were predicted. The cutting simulation model was constructed using ABAQUS software, and the cutting force and cutting temperature were investigated under various cutting parameters through range analysis, variance analysis, and signal-to-noise ratio transformation analysis. The simulation and experimental results demonstrated that the cutting force could be optimized by utilizing cutting speed vc=140m/min, feed rate f=0.1mm/r, and cutting depth ap=0.1mm. Under these conditions, the cutting force in the x-direction was measured as 78.560N, while the cutting force in the y-direction was 32.423N. Moreover, for achieving the optimal cutting temperature, the recommended cutting parameters were cutting speed vc=120m/min, feed rate f=0.1mm/r, and cutting depth ap=0.4mm. Compared to the conventional analytical method, which is burdened with high costs and low efficiency, the patent leverages finite element simulation technology to replicate the hardcutting process and its underlying cutting mechanism. This innovation simplifies the otherwise complex and laborious experimental and measurement procedures. By studying cutting force and cutting temperature, the optimization of cutting parameters can be achieved, thus offering valuable theoretical insights for practical production.
基于 ABAQUS 的淬火钢 GCr15 切削有限元模拟
本研究研究了 GCr15 硬切削过程中切削参数对切削力和切削温度的影响,并对切削参数进行了优化,预测了切削力和切削温度。利用 ABAQUS 软件建立了切削仿真模型,并通过范围分析、方差分析和信噪比变换分析等方法研究了不同切削参数下的切削力和切削温度。此外,为达到最佳切削温度,推荐的切削参数为切削速度 vc=120m/min,进给速度 f=0.1mm/r,切削深度 ap=0.4mm。与成本高、效率低的传统分析方法相比,该专利利用有限元模拟技术复制了硬切削过程及其背后的切削机制。这一创新简化了原本复杂而费力的实验和测量程序。通过研究切削力和切削温度,可以实现切削参数的优化,从而为实际生产提供有价值的理论见解。
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
Recent Patents on Mechanical Engineering
Recent Patents on Mechanical Engineering Engineering-Mechanical Engineering
CiteScore
0.80
自引率
0.00%
发文量
48
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