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A unified momentum equation approach for computing thermal residual stresses during melting and solidification

机译:一种统一的动力方程方法,用于在熔化和凝固过程中计算热残余应力

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In this article, we present a novel numerical method for computing thermal residual stresses from a viewpoint of fluid structure interaction (FSI). In a thermal processing of a material, residual stresses are developed as the material undergoes melting and solidification, and liquid, solid, and a mixture of liquid and solid (or mushy state) coexist and interact with each other during the process. In order to accurately account for the stress development during phase changes, we derived a unified momentum equation from the momentum equations of incompressible fluids and elastoplastic solids. In this approach, the whole fluid structure system is treated as a single continuum, and the interaction between fluid and solid phases across the mushy zone is naturally taken into account in a monolithic way. For thermal analysis, an enthalpy-based method was employed. As a numerical example, a two-dimensional laser heating problem was considered, where a carbon steel sheet was heated by a Gaussian laser beam. Momentum and energy equations were discretized on a uniform Cartesian grid in a finite volume framework, and temperature dependent material properties were used. The austenite martensite phase transformation of carbon steel was also considered. In this study, the effects of solid strains, fluid flow, mushy zone size, and laser heating time on residual stress formation were investigated. (C) 2017 Elsevier B.V. All rights reserved.
机译:在本文中,我们从流体结构相互作用(FSI)的观点来看,提出了一种用于计算热残余应力的新型方法。在材料的热处理中,由于材料经历熔化和凝固,液体,固体和固体(或糊状状态)的混合物在该过程中共相互作用而产生残余应力。为了准确地考虑相变期间应力发展,我们从不可压缩流体的动量方程和弹塑性固体衍生统一的动量方程。在这种方法中,整个流体结构系统被视为单个连续体,并以单片方式自然地考虑流体和固体相之间的相互作用。对于热分析,采用基于焓的方法。作为数值示例,考虑了二维激光加热问题,其中通过高斯激光束加热碳钢片。在有限的体积框架中,在均匀的笛卡尔栅格上离散化动量和能量方程,使用温度依赖性材料。还考虑了碳钢的奥氏体马氏体相变化。在该研究中,研究了固体菌株,流体流动,糊状区尺寸和激光加热时间对残余应力形成的影响。 (c)2017 Elsevier B.v.保留所有权利。

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