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Coupled Thermo-mechanical Analysis for Frictional Stir Welding Processes

机译:搅拌摩擦焊接过程的热力耦合分析

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We propose in this paper a fully coupled thermo-mechanical formulation for the numerical simulation of Friction Stir Welding (FSW). FSW is an important joining technique used in many practical applications (such as automobiles, ships and airplanes) where the quality of the resultant joint is of essential importance. Several models for FSW were proposed over the past two decades. However, they were mainly restricted either in the representation of the geometries, or the material behavior, or the boundary conditions. The model proposed here aims at representing the phenomenon in its entire complexity leading to an efficient and robust numerical tool. A combination of Arbitrary Lagrangian Eulerian (ALE), Lagrangian and Eulerian for different zones of the computational domains is introduced and the coupling in-between is defined. This results in a setting that permits treating arbitrary pin geometries and facilitates boundary conditions application. Both heat generation via viscous dissipation and frictional heating due to contact are taken into account. The material behavior is characterized by two alternative rigid thermo-visco-plastic constitutive models: Norton-Hoff and Sheppard-Wright. A pressure stabilized mixed linear velocity/linear pressure finite element method is used to solve the mechanical problem while linear temperature formulation with convection stabilization is used for the thermal one. The resulting coupled system of equations is treated in a staggered manner in which the mechanical and thermal parts are solved sequentially. The results of the simulation using the proposed thermo-mechanical model are presented and compared with the experimental evidence and results published in literature. Several non-circular pin shapes are analyzed.
机译:我们在本文中提出了一种完全耦合的热机械公式,用于搅拌摩擦焊(FSW)的数值模拟。 FSW是许多实际应用(例如汽车,轮船和飞机)中使用的重要连接技术,在这种应用中,最终连接的质量至关重要。在过去的二十年中,提出了几种FSW模型。但是,它们主要受到几何形状表示,材料行为或边界条件的限制。此处提出的模型旨在以整体复杂性表示现象,从而产生有效而稳健的数值工具。介绍了针对计算域不同区域的任意拉格朗日欧拉(ALE),拉格朗日和欧拉的组合,并定义了它们之间的耦合。这样产生的设置允许处理任意的销钉几何形状,并有利于边界条件的应用。既考虑了通过粘性耗散产生的热量,又考虑了由于接触而产生的摩擦加热。材料行为的特征在于两个可选的刚性热粘塑性本构模型:Norton-Hoff和Sheppard-Wright。压力稳定的混合线性速度/线性压力有限元方法用于解决机械问题,而热对流则采用具有对流稳定的线性温度公式。以交错方式处理所得的耦合方程组,其中依次求解机械零件和热零件。提出了使用所提出的热力学模型进行仿真的结果,并将其与实验证据和已发表在文献中的结果进行了比较。分析了几种非圆形销的形状。

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