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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Simulation and analysis of heat transfer and fluid flow characteristics of arc plasma in longitudinal magnetic field-tungsten inert gas hybrid welding
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Simulation and analysis of heat transfer and fluid flow characteristics of arc plasma in longitudinal magnetic field-tungsten inert gas hybrid welding

机译:纵向磁场 - 钨惰性气体混合焊接电弧等离子体传热与流体流动特性的仿真与分析

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摘要

In the present work, an axisymmetrical model based on the magnetohydrodynamics (MHD) is established to investigate the effect of external longitudinal magnetic field (LMF) on arc characteristics during the gas tungsten arc welding (GTAW) process. The profiles of temperature and voltage drop, distributions of axial velocity, shear stress, and arc pressure, etc., in the cases of different applied LMF strengths ranging from 0 to 0.06 T are simulated by utilizing the fluid dynamic theory coupled with Maxwell equations. In order to achieve more accurate values of heat transfer and fluid flow of arc plasma, we take the boundary layer of electrodes into consideration. The results show that the applied LMF could drive particles to rotate and expand the arc, and a negative pressure area appears at the center and induces an upward streaming of gas (i.e., anti-gravity flow) through the arc core with the effects of centrifugal force, concentrating the anodic energy to the cathode. When the magnetic induction strength is 0.06 T, vortexes are dramatically formed around the arc axis by the interaction between the anti-gravity flow from the arc center and outside downward flow from the arc fringes. Thus, the distribution of current density, anodic heat flux, and arc pressure shifts from the arc center to the periphery and forms a bimodal pattern. The various thermal fluxes and subsequent thermal efficiency are also quantitatively investigated for a better understanding of the effects of LMF on arc behaviors and the theoretical predictions show good agreement with the experimental results.
机译:在本作本作中,建立了基于磁性流动动力学(MHD)的轴对称模型,以研究外部纵向磁场(LMF)对气体钨弧焊(GTAW)工艺期间的电弧特性的影响。通过利用与麦克斯韦方程耦合的流体动态理论,模拟温度和轴向压力,轴向剪切应力和电弧压力等的温度和剪切应力和电弧压力等的分布在不同于0至0.06℃的情况下模拟。为了实现更准确的传热和弧等离子体的流体流动的值,我们考虑到电极边界层。结果表明,所施加的LMF可以驱动颗粒来旋转和扩展电弧,并且在中心出现负压区域,并通过弧形芯引起气体(即抗重函数)的向上流动,具有离心机的影响力,将阳极能量集中到阴极。当磁感应强度为0.06吨时,通过从弧形中心的抗重力流动与来自弧形边缘的外部向下流动之间的相互作用,涡旋围绕弧轴显着形成。因此,电流密度,阳极热通量和电弧压力的分布从弧中心到周边的偏移并形成双峰图案。各种热量助熔剂和随后的热效率也被定量地研究,以便更好地理解LMF对电弧行为的影响,理论预测与实验结果表现出良好的一致性。

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