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Numerical simulation of dynamic development of keyhole in double-sided arc welding

机译:双面电弧焊锁孔动态发展的数值模拟

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Double-sided arc welding (DSAW) is a novel process for joining metals that is capable of achieving deep narrow penetration in a single pass with minimized distortion. A clear understanding of the process fundamentals is critical in order to fully examine the potential of DSAW, to guide the further developments of the process, to direct the practicability study, and to design the process parameters. This paper aims at developing a numerical model for examining and simulating the dynamic keyhole establishment process, which will be a key in developing an effective control technology for DSAW. The model is used to determine the geometrical shape of the keyhole and the weld pool, and the temperature distribution in the workpiece. Quantitative information on the establishment of the keyhole in DSAW, such as the transient development of the keyhole and the weld pool, the increase rate of the depth of the surface depression, the time interval from full penetration to the keyhole establishment, the minimum span of the weld pool for describing the conditions required to complete the keyhole establishment, and variation of the overflow height of the weld pool surface on the plasma arc welding side, has been obtained through numerical analysis. The DSAW experiments show that the predicted weld cross-section is in agreement with the measured one. The results lay a foundation for guiding the further development of the DSAW process and its effective control.
机译:双面电弧焊(DSAW)是一种用于连接金属的新颖工艺,该工艺能够在单道焊道中实现深而窄的熔深并且将变形最小化。为了充分检查DSAW的潜力,指导过程的进一步发展,指导实用性研究并设计过程参数,对过程基础的清晰理解至关重要。本文旨在建立一个用于检查和模拟动态锁孔建立过程的数值模型,这将是开发有效的DSAW控制技术的关键。该模型用于确定锁孔和焊缝的几何形状以及工件中的温度分布。有关DSAW中锁孔建立的定量信息,例如锁孔和焊缝的瞬态发展,表面凹陷深度的增加率,从完全渗透到锁孔建立的时间间隔,通过数值分析,获得了用于描述完成锁孔建立所需条件的焊池以及等离子弧焊侧焊池表面溢流高度的变化。 DSAW实验表明,预测的焊接横截面与实测的横截面一致。研究结果为指导DSAW工艺的进一步发展及其有效控制奠定了基础。

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