Modeling and analysis of electro-thermal processes in installations for induction heat treatment of aluminum cores of power cables

A. Shcherba, O. D. Podoltsev, N. Suprunovska, R. V. Bilianin, T. Antonets, I. M. Masluchenko
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Abstract

Introduction. The development of the electric power industry is directly related to the improvement of cable lines. Cable lines meet modern requirements for reliability, they are increasingly used. Problem. Currently, power cables with an aluminum multi-conductor core, which requires heat treatment - an annealing process at the stage of the technological manufacturing process, are widespread. This process makes it possible to desirably reduce the electrical resistance of the wire and increase its flexibility. For effective use of induction heating during annealing of an aluminum core, it is necessary to determine the optimal frequency of the power source of the inductor. Considering the long length of the inductor and the large number of its turns, the numerical calculation of the electromagnetic field, which is necessary for calculating the equivalent electrical parameters of the turns of the inductor and its efficiency, requires significant computer resources. The goal is to develop a computer model for calculating electro-thermal processes in an induction plant for heating (up to the annealing temperature) an aluminum core of a power cable moving in the magnetic field of a long multi-turn inductor, as well as obtaining frequency dependences of the equivalent R, L parameters of such an inductor and determining the optimal the value of the frequency of the power source, which corresponds to the maximum value of the electrical efficiency of the inductor. Methodology. The mathematical model was developed to analyze the coupled electromagnetic and thermal processes occurring in a core moving in a time-harmonic magnetic field of an inductor at a constant speed. The differential equations for the electromagnetic and temperature fields, taking into account the boundary conditions, represent a coupled electro-thermal problem that was solved numerically by the finite element method using the Comsol software package. For a detailed analysis of the electromagnetic processes in the inductor, an additional problem was considered at the level of the elementary cell, which includes one turn of the inductor and a fragment of the core located near this turn. Results. According to the results of the calculation of the electromagnetic field in the area of the elementary cell, the equivalent electrical parameters of one turn of the inductor and the entire multi-turn inductor were calculated depending on the frequency of the electric current. The frequency dependences of the electrical efficiency of the inductor were calculated. Originality. Taking into account the design features of the inductor (its long length and large number of turns), the method of multiscale modeling was used. Electro-thermal processes in the core were studied at the macro level, and the distribution of the electromagnetic field and electric current density in the cross-section of the massive copper turn of the inductor was calculated at the micro level – at the level of an elementary cell containing only one turn of the inductor. The frequency dependences of the equivalent R, L parameters of the inductor, taking into account the skin effect, the proximity effect, and the geometric effect, were obtained, and the quantitative influence of the electric current frequency on these effects was studied. Practical value. The dependence of the electrical efficiency of the inductor on the frequency of the power source was obtained and it was shown that for effective heating of an aluminum core with a diameter of 28 mm, the optimal value of the frequency is in the range of 1–2 kHz, and at the same time the electrical efficiency reaches values of ηind = 0.3–0.33, respectively.
电力电缆铝芯感应热处理装置中电热过程的建模与分析
引言电力工业的发展与电缆线路的改进直接相关。电缆线路符合现代可靠性要求,因此得到越来越多的使用。问题目前,使用铝制多芯导线芯的电力电缆非常普遍,这种电缆在技术制造阶段需要进行热处理--退火工艺。这种工艺可以理想地降低导线的电阻并提高其柔韧性。为了在铝芯退火过程中有效使用感应加热,有必要确定电感器电源的最佳频率。考虑到感应器的长度较长,匝数较多,要计算感应器匝数的等效电气参数及其效率,必须对电磁场进行数值计算,这需要大量的计算机资源。我们的目标是开发一个计算机模型,用于计算感应设备中的电热过程,以加热(达到退火温度)在多匝长电感器磁场中移动的电力电缆铝芯,并获得该电感器等效 R、L 参数的频率相关性,以及确定电源频率的最佳值,该值与电感器电气效率的最大值相对应。方法。建立数学模型的目的是分析在感应器时谐磁场中以恒定速度运动的磁芯中发生的电磁和热耦合过程。考虑到边界条件,电磁场和温度场的微分方程代表了一个电热耦合问题,该问题通过使用 Comsol 软件包的有限元法进行数值求解。为了详细分析电感器中的电磁过程,还考虑了基本单元层面的附加问题,其中包括电感器的一个匝和位于该匝附近的磁芯片段。结果根据基本单元区域的电磁场计算结果,计算出了电感器一匝和整个多匝电感器的等效电气参数,这些参数取决于电流的频率。还计算了电感器电气效率的频率相关性。原创性。考虑到电感器的设计特点(长度长、匝数多),采用了多尺度建模方法。在宏观层面上研究了磁芯中的电热过程,在微观层面上计算了电感器大铜匝横截面上的电磁场和电流密度的分布情况,即只包含一匝电感器的基本单元的分布情况。考虑到集肤效应、邻近效应和几何效应,获得了电感器等效 R、L 参数的频率相关性,并研究了电流频率对这些效应的定量影响。实用价值。结果表明,要有效加热直径为 28 毫米的铝芯,频率的最佳值为 1-2 千赫,同时电能效率分别达到 ηind = 0.3-0.33 的值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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