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一种用于通过定向能量沉积对增材制造铜/钢多材料部件的可印刷性评估的层相关分析模型。

A Layer-Dependent Analytical Model for Printability Assessment of Additive Manufacturing Copper/Steel Multi-Material Components by Directed Energy Deposition.

作者信息

Zhang Wenqi, Zhang Baopeng, Xiao Haifeng, Yang Huanqing, Wang Yun, Zhu Haihong

机构信息

Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan 430074, China.

XI'AN Space Engine Company Limited, Xi'an 710100, China.

出版信息

Micromachines (Basel). 2021 Nov 13;12(11):1394. doi: 10.3390/mi12111394.

Abstract

Copper/steel bimetal, one of the most popular and typical multi-material components (MMC), processes excellent comprehensive properties with the high strength of steel and the high thermal conductivity of copper alloy. Additive manufacturing (AM) technology is characterized by layer-wise fabrication, and thus is especially suitable for fabricating MMC. However, considering both the great difference in thermophysical properties between copper and steel and the layer-based fabrication character of the AM process, the optimal processing parameters will vary throughout the deposition process. In this paper, we propose an analytical calculation model to predict the layer-dependent processing parameters when fabricating the 07Cr15Ni5 steel on the CuCr substrate at the fixed layer thickness (0.3 mm) and hatching space (0.3 mm). Specifically, the changes in effective thermal conductivity and specific heat capacity with the layer number, as well as the absorption rate and catchment efficiency with the processing parameters are considered. The parameter maps predicted by the model have good agreement with the experimental results. The proposed analytical model provides new guidance to determine the processing windows for novel multi-material components, especially for the multi-materials whose physical properties are significantly different.

摘要

铜/钢双金属是最常见且典型的多材料部件(MMC)之一,兼具钢的高强度和铜合金的高导热性,具备优异的综合性能。增材制造(AM)技术具有逐层制造的特点,因此特别适合制造多材料部件。然而,考虑到铜和钢的热物理性能差异巨大以及增材制造过程基于层的制造特性,最佳加工参数在整个沉积过程中会有所不同。在本文中,我们提出了一种解析计算模型,用于预测在固定层厚(0.3毫米)和扫描间距(0.3毫米)的情况下,在CuCr衬底上制造07Cr15Ni5钢时与层相关的加工参数。具体而言,考虑了有效热导率和比热容随层数的变化,以及吸收率和收集效率随加工参数的变化。该模型预测的参数图与实验结果吻合良好。所提出的解析模型为确定新型多材料部件的加工窗口提供了新的指导,特别是对于物理性能差异显著的多材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a52d/8618872/fc91accf372f/micromachines-12-01394-g001.jpg

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