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An electromagnetics-temperature-component multi-physical coupled model for electric furnace in calcium carbide smelting process

机译:碳化物冶炼过程中电炉的电磁 - 温度 - 组件多物理耦合模型

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摘要

A transient three-dimensional (3D) mathematical model is established to analyze electromagnetics-temperature-component multi-physical field distribution in calcium carbide (CaC2) smelting process in this paper. The electromagnetic field is solved by Maxwell's equations using the finite element method. The temperature field and phase change are modeled by the enthalpy equations. The chemical reaction process is built by reaction kinetics equations. The numerical modeling method is verified against data from literature. The results show that multi-physical fields are strongly coupling and uneven in electric furnace. Therefore, the higher temperature and product are mainly distributed in the upper layer of center zone. Large-capacity electric furnace is qualified with significant advantage in increasing output. When three-phase alternating current increases from 10,000 A to 14,000 A, the volume of CaC2 and molten CaC2 pool increases by 51.6% and 52.3% at the end of smelting process, respectively. However, it also increases the temperature in furnace, which has a negative effect on the safe production. The mathematical model established in this paper can accurately reflect electromagnetics-temperature-component multi-physical field distribution, and can provide guidance for the design and development of high-efficiency calcium carbide electric furnace.
机译:建立了瞬态三维(3D)数学模型,以分析本文碳化物(CaC2)冶炼过程中的电磁 - 温度组件多物理场分布。使用有限元方法通过Maxwell等式解决电磁场。温度场和相变由焓方程建模。化学反应过程由反应动力学方程构建。数值建模方法验证了文献数据的验证。结果表明,电炉中的多物理领域是强烈的耦合和不均匀。因此,较高的温度和产品主要分布在中心区域的上层。大容量电炉的资格在增加输出时具有显着的优势。当三相交流电流从10,000a到14,000a增加时,CaC 2和熔融CaC2池的体积分别在冶炼过程结束时增加51.6%和52.3%。然而,它还增加了炉子中的温度,这对安全生产产生了负面影响。本文建立的数学模型可以精确地反映电磁 - 温度 - 组件多物理场分布,并可为高效碳化物电炉的设计和开发提供指导。

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