用无网格法模拟推杆式加热炉再加热过程中钢坯的温度场

Qingguo Liu, U. Hanoglu, Z. Rek, B. Šarler
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引用次数: 0

摘要

利用无网格方法,首次对推入式再加热炉中的钢坯进行了模拟。模拟是替代测量的一种经济实惠的方法。考虑了钢坯的对流和辐射传热。在每个钢坯内部,热扩散方程在钢坯的二维中心切片上求解。扩散方程以强形式通过局部径向基函数定位法(LRBFCM)和显式时间步进法求解。射线追踪程序解决了辐射问题,其中视图因子是用蒙特卡罗方法计算的。考虑了在装炉和卸炉开始和结束时炉中钢坯数量的变化。根据蒙特卡洛方法中使用的不同射线数量、炉中钢坯的不同停止时间以及钢坯之间的不同间距,对钢坯温度变化的敏感性进行了研究。温度场模拟对于自动优化熔炉的生产率、能耗和钢坯质量也至关重要。这是 LRBFCM 首次成功用于解决如此复杂的工业问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Simulation of Temperature Field in Steel Billets during Reheating in Pusher-Type Furnace by Meshless Method
Using a meshless method, a simulation of steel billets in a pusher-type reheating furnace is carried out for the first time. The simulation represents an affordable way to replace the measurements. The heat transfer from the billets with convection and radiation is considered. Inside each of the billets, the heat diffusion equation is solved on a two-dimensional central slice of the billet. The diffusion equation is solved in a strong form by the Local Radial Basis Function Collocation Method (LRBFCM) with explicit time-stepping. The ray tracing procedure solves the radiation, where the view factors are computed with the Monte Carlo method. The changing number of billets in the furnace at the start and the end of the loading and unloading of the furnace is considered. A sensitivity study on billets' temperature evolution is performed as a function of a different number of rays used in the Monte Carlo method, different stopping times of the billets in the furnace, and different spacing between the billets. The temperature field simulation is also essential for automatically optimizing the furnace’s productivity, energy consumption, and the billet’s quality. For the first time, the LRBFCM is successfully demonstrated for solving such a complex industrial problem.
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