选择性烧结多孔材料微观结构和力学性能的三维多层模拟

Q1 Mathematics
Xiandong Zhou, Yangyiwei Yang, Somnath Bharech, Binbin Lin, Jörg Schröder, Bai-Xiang Xu
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引用次数: 11

摘要

本文对选择性烧结过程进行了多层相场模拟,并采用有限元法计算了微观组织的有效力学性能和残余应力。分析了光束功率和扫描速度对有效性能和残余应力的影响。较大的光束功率和较低的扫描速度导致粉末明显的部分熔化,导致微观组织孔隙率低。观察到有效力学性能与工艺参数之间存在非线性关系。有效力学性能的增长速率随光束功率的增大而减小,随扫描速度的减小而增大。利用幂律模型很好地建立了有效杨氏模量和泊松比与孔隙度的关系。应力集中在粉末颈部,应力强度随部分熔化程度的增加而增大,导致显微组织中残余应力增大。数值结果定量地揭示了过程-微观结构-性能之间的关系,为后续数据驱动方法的可行性提供了依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

3D-multilayer simulation of microstructure and mechanical properties of porous materials by selective sintering

3D-multilayer simulation of microstructure and mechanical properties of porous materials by selective sintering

This work presents multilayer phase-field simulation of selective sintering process and the calculation of effective mechanical properties and residual stress of the microstructure using the finite element method. The dependence of the effective properties and residual stress on the process parameters, such as beam power and scan speed, are analyzed. Significant partial melting of powders is observed for large beam power and low scan speed, which results in low porosity of the microstructure. Nonlinear relationship between the effective mechanical properties and process parameters is observed. The increasing rate of effective mechanical properties decreases with increasing beam power, while increases with decreasing scan speed. The dependence of effective Young's modulus and Poisson's ratio on porosity are well established using power law models. Stress concentrations are found at the necking region of powders and the intensity increases with the level of partial melting, which results in increasing residual stress in the microstructure. The numerical results reveal quantitatively the process-microstructure-property relation, which implies the feasibility of the subsequent data-driven approach.

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来源期刊
GAMM Mitteilungen
GAMM Mitteilungen Mathematics-Applied Mathematics
CiteScore
8.80
自引率
0.00%
发文量
23
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