微型工业直流电弧炉中金属加热和熔化的数值模拟

COMPEL Pub Date : 2024-02-16 DOI:10.1108/compel-09-2023-0417
Sergejs Pavlovs, Andris Jakovičs, Alexander Chudnovsky
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引用次数: 0

摘要

本文的目的是研究微型工业直流电弧炉(DC EAF)的电涡流(EVF)以及加热和熔化过程。设计/方法/方法 设计、制造和安装了一个微型直流电弧炉,以研究加热和熔化少量熔体(在研究案例中为 4.6 公斤钢)的工业过程。在金属的固相和液相温度相等和不相等的情况下,使用焓和孔隙率方法对金属熔化进行了数值模拟。金属液相的 EVF 是利用湍流大涡模拟模型计算得出的。熔体温度测量使用了红外摄像机和带有热电偶传感器的探头。通过观察熔体顶面颗粒的移动,估算出熔体速度。研究结果利用熔点处熔炉的热平衡,估算出金属加热和熔化的热通量,该热通量通过金属顶面的电弧点提供。利用金属加热和熔化的数值模拟估算了熔化时间。熔化过程在室温下开始,在金属全部熔化后结束。原创性/价值对金属加热和熔化过程的数值研究是在熔体中洛伦兹力导致的密集液相湍流循环的情况下进行的,洛伦兹力是电流与自磁场相互作用的结果。
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Numerical modelling of heating and melting of metal in a mini industrial direct current electrical arc furnace

Purpose

The purpose of this paper is the study of the electro-vortex flow (EVF) as well as heating and melting processes for mini industrial direct current electric arc furnace (DC EAF).

Design/methodology/approach

A mini DC EAF was designed, manufactured and installed to study the industrial processes of heating and melting a small amount of melt, being 4.6 kg of steel in the case under study. Numerical modelling of metal melting was performed using the enthalpy and porosity approach at equal values and non-equal values of the solidus and liquidus temperatures of the metal. The EVF of the liquid phase of metal was computed using the large eddy simulation model of turbulence. Melt temperature measurements were made using an infrared camera and a probe with a thermocouple sensor. The melt speed was estimated by observing the movement of particles at the top surface of melt.

Findings

The thermal flux for metal heating and melting, which is supplied through an arc spot at the top surface of metal, is estimated using the thermal balance of the furnace at melting point. The melting time was estimated using numerical modelling of heating and melting of metal. The process started at room temperature and finished once whole volume of metal was molten. The evolution of the solid/melt phase boundary as well as evolution of EVF patterns of the melt was studied.

Originality/value

Numerical studies of heating and melting processes in metal were performed in the case of intensive liquid phase turbulent circulation due to the Lorentz force in the melt, which results from the interaction of electrical current with a self-magnetic field.

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