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Modeling and Uncertainty Quantification of Material Properties in Additive Manufacturing

机译:增材制造中材料特性的建模和不确定性量化

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Determination of optimal process parameters for the additive manufacturing (AM) process requires use of simulation models. Quantifying the uncertainty in AM process plays an important role in the quality control of additively manufactured products. This work presents an uncertainty quantification framework to model and quantify the variability of macroscale material properties due to multiple uncertainty (aleatory and epistemic) sources present in the AM simulation process. A multi-scale multi-physics simulation model is developed first to simulate the additive manufacturing process. The melt pool profile obtained from macroscale finite element analysis (FEA) is coupled with a microscale cellular automata model to predict the microstructure evolution during solidification. Surrogate model is created to replace the expensive FEA model and surrogate model error is also considered. Based on the simulation model, various sources of uncertainty are aggregated to quantify the uncertainty in the grain size distribution of the microstructure. The contributions of the various sources of uncertainty to the uncertainty of microstructure grain size distribution are analyzed using variance-based global sensitivity analysis. The results show that the proposed approach can effectively perform UQ of the AM process and the uncertainty in the grain size distribution is mainly affected by material properties and grain growth parameters.
机译:确定增材制造(AM)过程的最佳过程参数需要使用仿真模型。量化增材制造过程中的不确定性在增材制造产品的质量控制中起着重要作用。这项工作提出了一个不确定性量化框架,用于建模和量化由于AM模拟过程中存在的多个不确定性(不确定性和认知性)源而导致的宏观材料特性的变异性。首先建立多尺度多物理场仿真模型,以模拟增材制造过程。从宏观有限元分析(FEA)获得的熔池轮廓与微观细胞自动机模型耦合,以预测凝固过程中的微观结构演变。创建替代模型来代替昂贵的FEA模型,并且还考虑了替代模型错误。基于模拟模型,汇总各种不确定性来源,以量化微结构晶粒尺寸分布中的不确定性。使用基于方差的全局敏感性分析来分析各种不确定性来源对微结构晶粒尺寸分布不确定性的贡献。结果表明,该方法可以有效地进行增材制造过程的UQ,并且晶粒尺寸分布的不确定性主要受材料性能和晶粒生长参数的影响。

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