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激光粉末床熔融中金刚石温度特性及石墨化机理的数值模拟

Numerical Simulation of Temperature Characteristics and Graphitization Mechanism of Diamond in Laser Powder Bed Fusion.

作者信息

Chen Yongqian, Zhang Shanghua, Liu Jialin, Zhang Wei, Ma Qingyuan, Wu Xiwang, Guo Shirui, Cui Yinghao, Li Xiaolei, Zheng Bo, Cui Lujun

机构信息

School of Mechatronics Engineering, Zhongyuan University of Technology, Zhengzhou 451191, China.

Zhengzhou Key Laboratory of Laser Additive Manufacturing Technology, Zhengzhou 451191, China.

出版信息

Materials (Basel). 2023 Sep 21;16(18):6338. doi: 10.3390/ma16186338.

Abstract

Thermal damage to diamonds is a major limitation in laser powder bed fusion (LPBF) processing of metal matrix diamond composites. In this paper, a numerical simulation model was established to describe the thermal effect of the Diamond-CuSn10 composite on the LPBF process. The simulation results show that the temperature of the diamond presents a double-peak structure, and the double-peak temperature curve shape can be modulated by modifying the laser scanning offset and the size of the diamond powder. And it suggests that the heat of the diamond mainly comes from the transfer of the molten pool. Then, combined with the experimental phenomenon, the mechanism of diamond graphitization in the LPBF process is analyzed. It indicates that since the surface defects of the diamond inhibit the heat conduction of the diamond, the temperature accumulates on the surface, leading to the graphitization of the diamond. Finally, based on this model, the potential of Ti-coated diamonds to prevent and reduce thermal damage in the LPBF process has been extensively studied. It is found that a Ti coating with low thermal conductivity can effectively reduce diamond temperature and improve diamond graphitization resistance. This study can provide a good method and basis for the preliminary selection of LPBF process parameters and the understanding of the graphitization mechanism of diamond tools.

摘要

金刚石的热损伤是金属基金刚石复合材料激光粉末床熔融(LPBF)加工中的一个主要限制因素。本文建立了一个数值模拟模型来描述金刚石-CuSn10复合材料在LPBF过程中的热效应。模拟结果表明,金刚石的温度呈现双峰结构,并且通过修改激光扫描偏移量和金刚石粉末尺寸可以调节双峰温度曲线形状。这表明金刚石的热量主要来自熔池的传递。然后,结合实验现象,分析了LPBF过程中金刚石石墨化的机理。结果表明,由于金刚石的表面缺陷抑制了金刚石的热传导,温度在表面累积,导致金刚石石墨化。最后,基于该模型,对钛涂层金刚石在LPBF过程中预防和减少热损伤的潜力进行了广泛研究。发现具有低导热率的钛涂层可以有效降低金刚石温度并提高金刚石的抗石墨化能力。该研究可为LPBF工艺参数的初步选择以及金刚石工具石墨化机理的理解提供良好的方法和依据。

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