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首页> 外文期刊>JOM >Integrated Simulation Framework for Additively Manufactured Ti-6Al-4V: Melt Pool Dynamics, Microstructure, Solid-State Phase Transformation, and Microelastic Response
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Integrated Simulation Framework for Additively Manufactured Ti-6Al-4V: Melt Pool Dynamics, Microstructure, Solid-State Phase Transformation, and Microelastic Response

机译:集成仿真框架,用于加剧制造的Ti-6AL-4V:熔池动力学,微观结构,固态相变和微弹性响应

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摘要

To accelerate the establishment of fundamental understanding of the additive manufacturing (AM) process and its influence on microstructural evolution and related properties, we develop a multiphysics and multiscale modeling framework that integrates: (1) a high-fidelity powder-scale three-dimensional simulation of transient heat transfer and melt flow dynamics, (2) cellular automaton simulation of solidification grain structure and texture, (3) phase-field modeling of precipitation and dissolution of second-phase precipitate during repeated thermal cycles, and (4) microstructure-based micro- and mesoscopic elastic response calculation. Using Ti-6Al-4V as a model system, we demonstrate the application of the integrated framework to simulate complex microstructure evolution during a single-track laser powder bed fusion process and the associated mechanical response. Our modeling framework successfully captures the solidification beta grain structure as a function of laser power and scanning speed, alpha precipitation upon subsequent cooling with different rates, and elastic response of the resulting (alpha + beta) two-phase microstructure. The key features of solidification and second-phase precipitate microstructures, and their dependence on processing parameters, agree well with existing experimental observations. The established modeling framework is generally applicable to other metallic materials fabricated by AM.
机译:为了加快建立对添加剂制造业(AM)过程的基本理解及其对微观结构演化和相关性质的影响,我们开发了一系列的多体和多尺度建模框架,其集成:(1)高保真粉末规模三维模拟瞬态传热和熔体流动动力学,(2)凝固晶粒结构的蜂窝自动化模拟及纹理,(3)反复热循环期间沉淀和二相沉淀溶解的相位场建模,(4)基于微观结构微观和介性弹性响应计算。使用TI-6AL-4V作为模型系统,我们证明了集成框架的应用在单轨激光粉末融合过程和相关机械响应期间模拟复杂的微观结构演变。我们的建模框架成功捕获了凝固β谷物结构作为激光功率和扫描速度的函数,随后用不同速率冷却时α沉淀,以及所得(α+β)两相微结构的弹性响应。凝固和二相沉淀微观结构的关键特征及其对加工参数的依赖性,与现有的实验观察结果很好。建立的建模框架通常适用于其他由AM制造的金属材料。

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