Two-temperature modeling of lamellar cathode arc

Yuanbo Li, Xing Liu, T. Ye
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Abstract

A three-dimensional, two-temperature (2T) model of a lamellar cathode arc is constructed, drawing upon the conservation equations for mass, momentum, electron energy, and heavy particle energy, in addition to Maxwell's equations. The model aims to elucidate how the physical properties of electrons and heavy particles affect heat transfer and fluid flow in a lamellar cathode arc. This is achieved by solving and comparing the fields of electron temperature, heavy particle temperature, fluid flow, current density, and Lorentz force distribution under varying welding currents. The results show that the guiding effect of the lamellar cathode on current density, the inertial drag effect of moving arc, and the attraction effect of Lorentz force at the lamellar cathode tip primarily govern the distribution of the arc's physical fields. The guiding effect localizes the current density to the front end of the lamellar cathode, particularly where the discharge gap is minimal. Both the inertial drag effect and the attraction effect of Lorentz force direct arc flow toward its periphery. Under the influence of the aforementioned factors, the physical fields of the lamellar cathode arc undergo expansion and shift counter to the arc's direction of motion. A reduction in welding current substantially weakens the guiding effect, causing the arc's physical fields to deviate further in the direction opposite to the arc motion. In comparison with a cylindrical cathode arc, the physical fields of the lamellar cathode arc are markedly expanded, leading to a reduction in current density, electron temperature, heavy particle temperature, cathode jet flow velocity, and Lorentz force.
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片状阴极电弧的双温建模
除了麦克斯韦方程之外,还借鉴了质量、动量、电子能量和重粒子能量守恒方程,构建了片状阴极电弧的三维双温(2T)模型。该模型旨在阐明电子和重粒子的物理特性如何影响片状阴极电弧中的热传递和流体流动。具体方法是求解和比较不同焊接电流下的电子温度、重粒子温度、流体流动、电流密度和洛伦兹力分布等场。结果表明,片状阴极对电流密度的导向作用、移动电弧的惯性阻力作用以及片状阴极顶端的洛伦兹力吸引作用是电弧物理场分布的主要制约因素。导向效应使电流密度集中在片状阴极的前端,尤其是放电间隙最小的地方。惯性阻力效应和洛伦兹力的吸引效应将电弧流向其外围。在上述因素的影响下,片状阴极电弧的物理场发生膨胀,并与电弧的运动方向相反。焊接电流的减小会大大削弱导向效果,使电弧的物理场进一步向与电弧运动方向相反的方向偏移。与圆柱形阴极电弧相比,片状阴极电弧的物理场明显扩大,导致电流密度、电子温度、重粒子温度、阴极射流速度和洛伦兹力降低。
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