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硬车削中的自驱动旋转刀具:基于有限元模型的分析与优化

Self-Propelled Rotary Tools in Hard Turning: Analysis and Optimization via Finite Element Models.

作者信息

Umer Usama, Mian Syed Hammad, Mohammed Muneer Khan, Abidi Mustufa Haider, Moiduddin Khaja, Kishawy Hossam

机构信息

Advanced Manufacturing Institute, King Saud University, Riyadh 11421, Saudi Arabia.

Machining Research Laboratory, University of Ontario Institute of Technology, Oshawa, ON L1G 0C5, Canada.

出版信息

Materials (Basel). 2022 Dec 8;15(24):8781. doi: 10.3390/ma15248781.

Abstract

This study investigates self-propelled rotary tool (SPRT) performance in hard turning using 3D finite element (FE) models. The FE models developed in this study are based on coupled temperature-displacement analysis using an explicit time-integration scheme. The developed FE models can predict chip morphology, cutting forces, tool and workpiece stresses and temperatures. For model verification, hard turning experiments were conducted using an SPRT on AISI 4340 bars. Cutting forces and maximum tool-chip interface temperatures were recorded and compared with the model findings. The effects of different process parameters were analyzed and discussed using the developed FE models. The FE models were run with a central composite design (CCD-25) matrix with four input variables, i.e., the cutting speed, the feed rate, the depth of the cut and the inclination angle. Response surfaces based on the Gaussian process were generated for each performance variable in order to predict design points not available in the original design of the experiment matrix. An optimization study was carried out to minimize tool stress and temperature while setting limits for the material removal rate (MRR) and specific cutting energy for the process. Optimized processes were found with moderate cutting speeds and feed rates and high depths of cut and inclination angles.

摘要

本研究使用三维有限元(FE)模型研究了自驱动旋转刀具(SPRT)在硬车削中的性能。本研究开发的有限元模型基于采用显式时间积分方案的热-结构耦合分析。所开发的有限元模型能够预测切屑形态、切削力、刀具和工件的应力及温度。为进行模型验证,使用自驱动旋转刀具对AISI 4340棒材进行了硬车削实验。记录了切削力和刀具-切屑界面的最高温度,并与模型结果进行了比较。使用所开发的有限元模型对不同工艺参数的影响进行了分析和讨论。有限元模型采用中心复合设计(CCD-25)矩阵运行,该矩阵有四个输入变量,即切削速度、进给率、切削深度和倾斜角度。针对每个性能变量生成了基于高斯过程的响应面,以便预测实验矩阵原始设计中未有的设计点。开展了一项优化研究,在设定材料去除率(MRR)和该工艺的比切削能的限制条件下,使刀具应力和温度最小化。研究发现,采用中等切削速度和进给率以及较大切削深度和倾斜角度可实现优化加工。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/36fe/9782531/ce4dc1bdf95d/materials-15-08781-g001.jpg

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