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Numerical Modelling of an Anodic Metal Bath Heated with an Argon Transferred Arc

机译:氩转移电弧加热阳极金属熔池的数值模拟

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A new 3-D model has been developed to describe the interaction between a transferred electric arc and a liquid metal bath, and has been used to simulate a pilot axisymmetrical transferred arc furnace operating in the EDF Research and Development laboratory. This model enables calculations of the flow patterns, temperature distribution and electromagnetic fields in both the arc and the bath. The Navier-Stokes equation coupled with the electromagnetic relations are solved in each domain using a finite volume method. The source term in the radiative energy equation is modeled using the radiative transfer method in order to take into account the strong temperature variations in the electric arc. The transport and condensation of metal vapour in the arc domain are considered by solving a conservation equation for the vapour mass fraction. The arc flow calculation at the bath surface uses a one-dimensional sheath model taking account of the metal vapour, in order to ensure the coupling between the plasma and the bath by evaluating the boundary conditions at the arc/bath interface. The calculations were performed for an arc length of 0.25 m. Realistic predictions are obtained for the electrical, dynamic and thermal behaviour of the plasma and liquid metal, and also for the arc voltage. The results indicate that the effects of the arc impact and Lorentz forces are not sufficient to induce effective mixing throughout the metal bath, leading to a marked thermal stratification in the liquid metal. In the bath, the liquid/solid interface has been determined by calculations.
机译:已开发出一种新的3-D模型来描述转移的电弧与液态金属熔池之间的相互作用,并已用于模拟在EDF研究和开发实验室中运行的试验性轴对称转移电弧炉。该模型可以计算电弧和熔池中的流型,温度分布和电磁场。使用有限体积方法在每个域中求解与电磁关系耦合的Navier-Stokes方程。为了考虑电弧中强烈的温度变化,使用辐射转移方法对辐射能方程中的源项进行建模。通过求解蒸气质量分数的守恒方程,可以考虑金属蒸气在电弧域中的传输和冷凝。熔池表面的电弧流计算使用考虑金属蒸气的一维鞘模型,以通过评估电弧/熔池界面的边界条件来确保等离子体与熔池之间的耦合。弧长为0.25 m时进行了计算。对于等离子体和液态金属的电,动态和热行为,以及电弧电压,都获得了现实的预测。结果表明,电弧冲击和洛伦兹力的影响不足以在整个金属熔池中引起有效混合,从而导致液态金属中明显的热分层。在浴中,通过计算确定了液体/固体界面。

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