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A unified model for coupling mesoscopic dynamics of keyhole, metal vapor, arc plasma, and weld pool in laser-arc hybrid welding

机译:激光电弧混合焊接中键孔,金属蒸气,电弧等离子体和焊池的介观动力学耦合的统一模型

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摘要

Although building a model of laser-arc hybrid welding has attracted substantial attention in recent decades, many problems remain. In particular, existing models failed to reproduce the highly transient (down to several tens of nanoseconds) physical interactions between solid, liquid, vapor plume and plasma occurring in the welding process. These interactions control the key physical processes of laser-arc hybrid welding and play dominant roles in process defect formation and final joint quality. Development of a unified model for laser-arc hybrid welding capable of modeling the multiphase physical interactions is faced with three major challenges. The first is how to decouple the highly correlated and mesoscopic interactions between the solid, liquid, vapor plume and plasma phases. The second and third are respectively the numerical treatments of the nonlinear discontinuous sheath layer between the arc plasma and the weld pool and the Knudsen layer between the vapor plume and the weld pool. In this study, we have developed a three-dimensional unified mathematical model that couples the mesoscopic dynamics of the arc plasma, keyhole, metal vapor, and weld pool in the laser-TIG hybrid welding process. To decouple the highly correlated gas, liquid, solid and plasma interactions, we proposed a novel approach in which the electromagnetic field in the workpiece (including solid and liquid phases) and outside the workpiece (gaseous phase and plasma) were continuously modeled globally, but in which the heat transfer and fluid flow are modeled separately within and outside of the workpiece and then coupled through boundary conditions. To treat the nonlinear interface between the arc plasma and weld pool outside the keyhole as well as between the vapor plume/plasma and the weld pool inside the keyhole, we proposed a novel ghost-fluid-based multiple timescale stepping algorithm. The results indicate that our model can be used to predict the time-dependent mesoscopic dynamics of vapor plume, plasma, keyhole and weld pool in a coupled manner. Good agreement was obtained between the numerical predictions and experimental results and literature data.
机译:尽管在最近几十年中建立激光电弧混合焊接模型已引起了广泛的关注,但仍然存在许多问题。特别是,现有模型无法重现在焊接过程中发生的固体,液体,蒸气羽流和等离子体之间的高度瞬态(低至数十纳秒)的物理相互作用。这些相互作用控制了激光电弧混合焊接的关键物理过程,并在过程缺陷形成和最终接头质量中起着主导作用。能够建模多相物理相互作用的激光电弧混合焊接统一模型的开发面临三个主要挑战。第一个是如何分离固相,液相,蒸气羽流和等离子体相之间的高度相关和介观相互作用。第二个和第三个分别是电弧等离子体和焊池之间的非线性不连续护套层以及蒸气羽流和焊池之间的努森层的数值处理。在这项研究中,我们开发了一个三维统一的数学模型,该模型耦合了激光-TIG混合焊接过程中电弧等离子体,锁孔,金属蒸气和焊池的介观动力学。为了消除高度相关的气体,液体,固体和等离子体之间的相互作用,我们提出了一种新颖的方法,在该方法中,对工件(包括固相和液相)和工件外部(气相和等离子体)的电磁场进行全局建模,但是其中传热和流体流动分别在工件内部和外部建模,然后通过边界条件进行耦合。为了处理锁孔外部电弧等离子体与焊缝之间以及锁孔内部蒸气羽/等离子体与焊缝之间的非线性界面,我们提出了一种基于幻影流体的多重时标步进算法。结果表明,我们的模型可以用来预测蒸汽羽,等离子体,锁孔和焊缝池的时变介观动力学。数值预测与实验结果和文献数据之间取得了很好的一致性。

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