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A New Heat Source Model for Keyhole Mode Laser Welding

机译:一种新的锁孔模式激光焊接热源模型

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摘要

Laser welding is a common technique for joining metals in many manufacturing industries. During welding, a weld gun traverses the interface of the parts to be joined causing them to melt, fuse, and solidify when the temperature decreases, thus joining the parts. Due to the heat input and the resulting melting and solidification, the parts deform causing residual distortion and residual stresses. To assure the geometrical and functional quality of the product, computational welding mechanics (CWM) is often employed in the design phase to predict the outcome of different design proposals. Furthermore, CWM can be used to design the welding process with the objective of assuring the quality of the weld. However, welding is a complex multiphysical process including the weld pool flow, microstructure dynamics, and structural mechanics. In a design process, it is typically not feasible, for example, to employ fluid simulation of the weld pool in order to predict deformation of a welded assembly, especially if a set of design proposals is under investigation. This is because of the high resolution needed for these fluid simulations in combination with challenges to couple fluid simulation with structural simulation. Instead, what is used is a heat source that emulates the heat input from the melt pool. An example of a heat source is the standard doubled ellipsoid. This heat source has been efficiently used for a large number of welding simulation. However, standard heat sources are typically not flexible enough to capture the fusion zone for deep keyhole mode laser welding. In this study, we presented a new heat source model for keyhole mode laser welding. In an industrial case study, a number of bead-on-plate welds have been employed to compare standard weld heat sources and develop the new heat source model. The proposed heat source is based on a combination of standard heat sources. From this study, it was concluded that the standard heat sources could not predict the observed melted zone for certain industrial application while the new heat source was able to do so. Therefore, the proposed heat source model can be employed to model keyhole mode laser welding, which enables welding simulation of a set of design proposals during the design process in a larger number of industrial cases.
机译:激光焊接是许多制造业中连接金属的常用技术。在焊接过程中,焊枪穿过要连接的零件的界面,使它们在温度降低时熔化、熔化和凝固,从而连接零件。由于热量输入以及由此产生的熔化和凝固,零件变形,导致残余变形和残余应力。为了确保产品的几何和功能质量,在设计阶段通常采用计算焊接力学 (CWM) 来预测不同设计方案的结果。此外,CWM可用于设计焊接工艺,以确保焊接质量。然而,焊接是一个复杂的多物理场过程,包括熔池流动、微观结构动力学和结构力学。例如,在设计过程中,采用熔池流体仿真来预测焊接组件的变形通常是不可行的,尤其是在正在研究一组设计方案的情况下。这是因为这些流体仿真需要高分辨率,同时将流体仿真与结构仿真相结合。取而代之的是模拟熔池输入热量的热源。热源的一个示例是标准的双椭球体。该热源已被有效地用于大量的焊接模拟。然而,标准热源通常不够灵活,无法捕获熔合区以进行深锁孔模式激光焊接。在这项研究中,我们提出了一种新的锁孔模式激光焊接热源模型。在一个工业案例研究中,已经采用了许多焊道焊缝来比较标准焊缝热源并开发新的热源模型。建议的热源基于标准热源的组合。从这项研究中得出的结论是,标准热源无法预测某些工业应用中观察到的熔化区,而新热源能够做到这一点。因此,所提出的热源模型可用于对锁孔模式激光焊接进行建模,从而可以在更多的工业案例中对设计过程中的一组设计方案进行焊接仿真。

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