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基于分子动力学的加工参数对单晶γ-TiAl合金磨料流加工的影响

Effects of Machining Parameters on Abrasive Flow Machining of Single Crystal γ-TiAl Alloy Based on Molecular Dynamics.

作者信息

Li Junye, Song Chao, Du Xin, Xie Hongcai, Zhao Jinghe, Chen Ying

机构信息

Ministry of Education Key Laboratory for Cross-Scale Micro and Nano Manufacturing, Changchun University of Science and Technology, Changchun 130022, China.

School of Mechanical Engineering, Changchun Guanghua University, Changchun 130033, China.

出版信息

Micromachines (Basel). 2025 Jan 13;16(1):84. doi: 10.3390/mi16010084.

Abstract

Observing the intricate microstructure changes in abrasive flow machining with traditional experimental methods is difficult. Molecular dynamics simulations are used to look at the process of abrasive flow processing from a microscopic scale in this work. A molecular dynamics model for micro-cutting a single crystal γ-TiAl alloy with a rough surface in a fluid medium environment is constructed, which is more realistic. The evolution of material removal, cutting force, temperature, energy, and dislocation during micro-cutting are analyzed. The impact of cutting depth, abrasive particle sizes, and abrasive material on the micro-cutting process are analyzed. The analysis shows that the smaller cutting depth and abrasive particle sizes are beneficial to obtain a better machining surface, and the cubic boron nitride (CBN) abrasive is an effective substitute material for diamonds. The purpose of this study is to provide unique insights for improving the material removal rate and subsurface quality by adjusting machining parameters in actual abrasive flow precision machining.

摘要

用传统实验方法观察磨料流加工中复杂的微观结构变化是困难的。在这项工作中,分子动力学模拟用于从微观尺度研究磨料流加工过程。构建了在流体介质环境中对具有粗糙表面的单晶γ-TiAl合金进行微切削的分子动力学模型,该模型更符合实际情况。分析了微切削过程中材料去除、切削力、温度、能量和位错的演变。分析了切削深度、磨粒尺寸和磨料材料对微切削过程的影响。分析表明,较小的切削深度和磨粒尺寸有利于获得更好的加工表面,立方氮化硼(CBN)磨料是金刚石的有效替代材料。本研究的目的是为通过在实际磨料流精密加工中调整加工参数来提高材料去除率和亚表面质量提供独特的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9750/11767635/78d2271c2a06/micromachines-16-00084-g001.jpg

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