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Electromagnetic and thermal-flow modeling of a cold-wall crucible induction melter

机译:冷壁坩埚感应熔炉的电磁和热流模拟

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摘要

An approach for modeling cold-wall crucible induction melters is described. Materials in the melt and melter are nonferromagnetic. In contrast to other modeling studies reported in the literature, the numerical models use commercial codes. The ANSYS finite-element code[1] is employed for electromagnetic field simulations and the STAR-CD finite-volume code[2] for thermal-flow calculations. Results from the electromagnetic calculations in the form of local Joule heat and Lorentz force distributions are included as source terms in the thermal-flow analysis. This loosely coupled approach is made possible by the small variation in temperature and, consequently, small variation in electrical properties across the melt as well as the quasi-steady-state nature of the thermal-flow calculations. A three-dimensional finite-element grid for electromagnetic calculations is adapted to a similar axisymmetric finite-volume grid for data transfer to the thermal-flow model. Results from the electromagnetic model compare well with operational data from a 175-mm-diameter melter. REsults from the thermal-flow simulation provide insight about molten metal circulation patterns, temperature variations, and velocity magnitudes. Initial results are included for a model that simulates the formation of a solid (skull) layer on the crucible base and wall. Overall, the modeling approach is shown to produce useful results that relate operational parameters to the physics of steady-state melter operation.
机译:描述了一种用于对冷壁坩埚感应熔炉进行建模的方法。熔化器和熔化器中的材料是非铁磁性的。与文献中报道的其他建模研究相反,数值模型使用商业代码。 ANSYS有限元代码[1] 用于电磁场仿真,而STAR-CD有限体积代码[2] 用于热流计算。电磁计算的结果以局部焦耳热和洛伦兹力分布的形式包括在热流分析中作为源项。通过温度的小变化,从而整个熔体的电特性的小变化,以及热流计算的准稳态性质,可以实现这种松散耦合的方法。用于电磁计算的三维有限元网格适用于类似的轴对称有限体积网格,用于将数据传输到热流模型。电磁模型的结果与直径为175毫米的熔炉的运行数据进行了比较。热流模拟的结果提供了有关熔融金属循环模式,温度变化和速度大小的信息。模型的初始结果包括在内,该模型模拟了坩埚底部和壁上的固体(头骨)层的形成。总的来说,该建模方法显示出可产生有用的结果,这些结果将运行参数与稳态熔化器运行的物理学联系起来。

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