Mathematical model of slab heating in a furnace with walking beams

I. B. Abdukodirov, A. V. Vargin, I. A. Levitskii
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Abstract

Slab heating before hot rolling is necessary for obtaining required metal ductility. The most effective for this purpose are furnaces with walking beams that provide heat supply to all sides of the slab. However, the areas of slabs lower surfaces, contacting with water-cooled beams, are shielded from the radiation of the furnace lower heating zones and take the heat from the beams.To study the inhomogeneity of the slab temperature field and its dependence on the peculiarities of their transport system design, a mathematical model of slab heating in a furnace with walking beams was developed and programmatically implemented, based on numerical solution of a three-dimensional heat conduction problem with piecewise defined boundary conditions on the lower surface. For the open areas of the slab bottom surface, the same boundary conditions were set as on the top surface; and for the areas of contact with the beams, modified boundary conditions were set, taking into account the duration of this contact. For the numerical solution of the system of difference equations, the line-by-line method was applied, which allows us to obtain a system with a three-diagonal matrix of coefficients. The calculations carried out in the approximation of adiabaticity of the contact areas of the slab with the beams during the contact period allowed us to obtain temperature fields for different slab sections. As a result, a significant irregularity of temperature field of the slab lower surface was revealed, affecting the irregularity of temperature field of the entire slab. The developed program for calculating and visualizing the results can be used to study the temperature field of the slab under various heating modes if there is experimental information that allows one to clarify the tuning parameters of the model.
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步进梁炉板坯加热的数学模型
为了获得所需的金属延展性,热轧前的板坯加热是必要的。实现这一目的最有效的方法是带有行走梁的炉体,这种炉体向板坯的四面提供热量。然而,与水冷梁接触的板坯较低表面的区域被屏蔽了炉膛较低加热区的辐射,并从梁中吸收热量。为了研究板坯温度场的非均匀性及其与输运系统设计特性的关系,基于下表面分段定义的三维热传导问题的数值解,建立了带步进梁的炉内板坯加热的数学模型,并通过程序实现了该模型。板坯底面开敞区域边界条件与顶面相同;对于与梁接触的区域,考虑到接触的持续时间,设置了修正的边界条件。对于差分方程组的数值解,采用逐行法,得到一个具有三对角系数矩阵的方程组。在接触期间,对板坯与梁接触区域的绝热系数进行了近似计算,使我们能够获得不同板坯截面的温度场。结果表明,板坯下表面温度场的显著不均匀性影响了整个板坯温度场的不均匀性。所开发的计算和显示结果的程序可用于研究不同加热模式下的板坯温度场,如果有实验信息允许澄清模型的调谐参数。
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