Finite element modeling of high-speed orthogonal cutting: A contribution to understanding the influence of mesh parameters on saw-toothed chip formation

IF 1.9 3区 工程技术 Q3 ENGINEERING, MANUFACTURING
Mehmet Aydın
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引用次数: 0

Abstract

Modeling of metal cutting using finite element (FE) method has been investigated in many studies. They make it possible to better understand the chip formation. However, the mesh dependence of the numerical solution is still unsolved. The purpose of this paper is the modeling and simulation of saw-toothed chip formation during high-speed orthogonal cutting. Further, the influences of mesh parameters on saw-toothed chip formation are investigated as an innovative highlight of this study. The investigation of high-speed cutting (HSC) is based on FE analysis, where the Johnson-Cook (JC) constitutive model is combined with an energy-based fracture criterion. The mesh parameters considered include element dimension, element orientation, and hourglass treatment. The results show that the peak and valley values of saw-toothed chip obtained through the model mesh10 × 10 are close to the measurements, but the pitch value is predicted with a larger error than those of peak and valley values. Square elements of dimension 10 μm can be also used to avoid the influence of element orientation on cutting forces with an error about 10%. When using square elements, the hourglass treatment causes slightly differences in chip morphology and cutting force. On the other hand, the enhanced is the more efficient method to prevent the hourglass effect for rectangular elements. The model mesh8 × 10 gives an error less than 15% for cutting force. Moreover, the effect of element dimension on cutting force can be reduced by applying the fracture energy criterion controlled through a characteristic length to different mesh dimensions.
高速正交切削的有限元建模:有助于理解网格参数对锯齿形切屑形成的影响
利用有限元方法对金属切削过程进行建模已经得到了广泛的研究。它们使更好地理解芯片的形成成为可能。然而,数值解的网格依赖性仍未得到解决。本文的目的是对高速正交切削过程中锯齿形切屑的形成进行建模和仿真。此外,研究了网格参数对锯齿形切屑形成的影响,这是本研究的创新亮点。高速切削(HSC)的研究基于有限元分析,其中Johnson-Cook (JC)本构模型与基于能量的断裂准则相结合。考虑的网格参数包括单元尺寸、单元方向和沙漏处理。结果表明,通过模型mesh10 × 10得到的锯齿片峰谷值与实测值接近,但预测的节距值比峰谷值误差大。也可以采用尺寸为10 μm的方形单元,避免了单元取向对切削力的影响,误差在10%左右。当使用方形元素时,沙漏处理会导致切屑形貌和切削力略有不同。另一方面,对于矩形单元,增强是一种更有效的防止沙漏效应的方法。模型网格为8 × 10,切削力误差小于15%。此外,通过对不同网格尺寸采用特征长度控制的断裂能准则,可以减小单元尺寸对切削力的影响。
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
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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