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Challenges in Thermo-mechanical Analysis of Friction Stir Welding Processes

机译:搅拌摩擦焊接过程的热机械分析挑战

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This paper deals with the numerical simulation of friction stir welding (FSW) processes. FSW techniques are used in many industrial applications and particularly in the aeronautic and aerospace industries, where the quality of the joining is of essential importance. The analysis is focused either at global level, considering the full component to be jointed, or locally, studying more in detail the heat affected zone (HAZ). The analysis at global (structural component) level is performed defining the problem in the Lagrangian setting while, at local level, an apropos kinematic framework which makes use of an efficient combination of Lagrangian (pin), Eulerian (metal sheet) and ALE (stirring zone) descriptions for the different computational sub-domains is introduced for the numerical modeling. As a result, the analysis can deal with complex (non-cylindrical) pin-shapes and the extremely large deformation of the material at the HAZ without requiring any remeshing or remapping tools. A fully coupled thermo-mechanical framework is proposed for the computational modeling of the FSW processes proposed both at local and global level. A staggered algorithm based on an isothermal fractional step method is introduced. To account for the isochoric behavior of the material when the temperature range is close to the melting point or due to the predominant deviatoric deformations induced by the visco-plastic response, a mixed finite element technology is introduced. The Variational Multi Scale method is used to circumvent the LBB stability condition allowing the use of linear/linear P1/P1 interpolations for displacement (or velocity, ALE/Eulerian formulation) and pressure fields, respectively. The same stabilization strategy is adopted to tackle the instabilities of the temperature field, inherent characteristic of convective dominated problems (thermal analysis in ALE/Eulerian kinematic framework). At global level, the material behavior is characterized by a thermo-elasto-viscoplastic constitutive model. The analysis at local level is characterized by a rigid thermo-visco-plastic constitutive model. Different thermally coupled (non-Newtonian) fluid-like models as Norton-Hoff, Carreau or Sheppard-Wright, among others are tested. To better understand the material flow pattern in the stirring zone, a (Lagrangian based) particle tracing is carried out while post-processing FSW results. A coupling strategy between the analysis of the process zone nearby the pin-tool (local level analysis) and the simulation carried out for the entire structure to be welded (global level analysis) is implemented to accurately predict the temperature histories and, thereby, the residual stresses in FSW.
机译:本文涉及搅拌摩擦焊(FSW)过程的数值模拟。 FSW技术被用于许多工业应用中,尤其是在航空和航天工业中,其中接合的质量至关重要。该分析集中在全局层面(考虑要连接的整个组件),或者在局部层面,更详细地研究热影响区(HAZ)。执行全局(结构组件)级别的分析,以定义拉格朗日设置中的问题,而在局部级别,采用运动学框架,利用拉格朗日(销),欧拉(金属薄板)和ALE(搅拌)的有效组合区域)的描述为数值建模引入了不同计算子域。结果,该分析可以处理复杂的(非圆柱形)销形以及热影响区材料的极大变形,而无需任何重新定型或重新映射工具。提出了一种完全耦合的热机械框架,用于在局部和全局级别上提出的FSW过程的计算模型。介绍了一种基于等温分步法的交错算法。为了解决材料在温度范围接近熔点或由于粘塑性响应引起的主要偏斜变形时的等速行为,引入了混合有限元技术。变分多尺度方法用于规避LBB稳定性条件,允许分别对位移(或速度,ALE /欧拉公式)和压力场使用线性/线性P1 / P1插值。采用相同的稳定策略来解决温度场的不稳定性,对流控制问题的固有特征(ALE /欧拉运动学框架中的热分析)。在全球范围内,材料行为以热弹-粘塑性本构模型为特征。局部分析的特征在于刚性的热粘塑性本构模型。测试了不同的热耦合(非牛顿)流体状模型,例如Norton-Hoff,Carreau或Sheppard-Wright等。为了更好地了解搅拌区内的物料流型,在对FSW进行后处理时会进行(基于拉格朗日的)颗粒追踪。在销工具附近的工艺区域分析(局部水平分析)与要焊接的整个结构进行的模拟(全局水平分析)之间采用一种耦合策略,以精确地预测温度历史,从而准确地预测温度。 FSW中的残余应力。

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    Univ Politecn Cataluna, Int Ctr Numer Methods Engn CIMNE, C Gran Capitan S-N,Modulo C1,Campus Norte UPC, Barcelona 08034, Spain;

    Univ Politecn Cataluna, Int Ctr Numer Methods Engn CIMNE, C Gran Capitan S-N,Modulo C1,Campus Norte UPC, Barcelona 08034, Spain;

    Univ Politecn Cataluna, Int Ctr Numer Methods Engn CIMNE, C Gran Capitan S-N,Modulo C1,Campus Norte UPC, Barcelona 08034, Spain;

    Univ Politecn Cataluna, Int Ctr Numer Methods Engn CIMNE, C Gran Capitan S-N,Modulo C1,Campus Norte UPC, Barcelona 08034, Spain;

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