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Semi-coupled resolved CFD-DEM simulation of powder-based selective laser melting for additive manufacturing

机译:粉末基选择性激光熔化的半耦合分辨的CFD-DEM模拟添加剂制造

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We present a semi-coupled resolved Computational Fluid Dynamics (CFD) and Discrete Element Method (DEM) to simulate a class of granular media problems that involve thermal-induced phase changes and particle-fluid interactions. We employ an immersed boundary (IB) method to model the viscous fluids surrounding solid particles in conjunction with a fictious CFD domain occupied by the actual positions of the particle. Heat transfers between the actual fluids and the fictitious particle are treated as a multiphase problem by the CFD to resolve the temperature gradient distribution within each granular particle and its possible phase change (e.g., melting or partial melting). The mechanical interactions between the solid particles and the fluids are modeled by coupled DEM and CFD. The proposed method is validated by simulations of a typical powder-based selective laser melting (PB-SLM) process. Three key SLM input parameters, laser power, laser energy distribution and hatch distance, are examined on the effect of melting. The simulation results capture key features and observations of PB-SLM found in experiments and are quantitatively consistent with available testing data. The study provides a physically based, high-fidelity computational approach for future PB-SLM additive manufacturing. (C) 2021 Elsevier B.V. All rights reserved.
机译:我们介绍了一个半耦合的解析计算流体动力学(CFD)和离散元素方法(DEM),以模拟一类涉及热诱导相变和颗粒流体相互作用的粒状介质问题。我们采用浸没的边界(IB)方法来模拟固体颗粒的粘性流体结合与颗粒的实际位置占据的粘性CFD结构域。通过CFD将实际流体和虚拟颗粒之间的热转移作为多相问题,以解析每个粒状颗粒内的温度梯度分布及其可能的相变(例如,熔化或部分熔化)。固体颗粒和流体之间的机械相互作用通过偶联的DEM和CFD进行建模。通过模拟典型的粉末的选择性激光熔融(PB-SLM)方法验证所提出的方法。三个关键SLM输入参数,激光功率,激光能量分布和舱口距离,熔化效果。仿真结果捕获实验中发现的PB-SLM的关键特征和观察,并与可用的测试数据定量一致。该研究为未来的PB-SLM添加剂制造提供了物理基础的高保真计算方法。 (c)2021 Elsevier B.v.保留所有权利。

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