管道感应电阻加热系统的实验和数值研究

Q3 Engineering Russian Electrical Engineering Pub Date : 2024-01-30 DOI:10.3103/s1068371223110111
A. G. Shcherbinin, A. E. Terlych, V. V. Chernyaev, M. D. Naumov
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引用次数: 0

摘要

摘要采用感应电阻系统对管道进行加热,该系统是一种短路同轴线。在计算这种系统的发热功率时,有必要考虑到钢管的表面效应和邻近效应,它们会导致钢管电阻的显著增加。通过分析解决磁动力学问题,确定了感应电阻加热系统(IRH)钢管的总电阻。通过对不同电流负载下的 IRH 系统运行进行物理和数学模拟,对确定功率的方法进行了验证。为了进行物理模拟,安装了一个实验设施,这是 IRH 系统的一个部分。测试期间,对电流进行记录,并测量导体、电缆表面、管道和环境的温度。在该设施中实施的瞬态热过程由一维轴对称公式中的非稳态导热微分方程来描述。利用所提出的方法确定了热释放的体积功率。对物理实验和数值实验所获得的温度相关性进行的比较分析表明,两者的结果相当吻合。
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Experimental and Numerical Study of an Induction Resistive Heating System of Pipelines

Abstract

Extralong pipelines are heated by means of induction resistive systems are used, which are a short-circuited coaxial line. When calculating the heat generation power of such a system, it is necessary to take into account the surface effect and the proximity effect in the steel pipe, which lead to a significant increase in its electrical resistance. The total resistance of a steel pipe of an induction-resistive heating system (IRH) was determined by analytically solving a magnetodynamic problem. The verification of the methodology for determining power was carried out using physical and mathematical simulation of the operation of the IRH system at various current loads. For physical simulation, an experimental facility was installed, which is a section of the IRH system. During the tests, the current was recorded and the temperatures of the conductor, cable surface, pipe, and environment were measured. Transient thermal processes implemented at the facility are described by the differential equation of nonstationary thermal conductivity in a one-dimensional axisymmetric formulation. The volumetric power of heat release is determined using the proposed methodology. A comparative analysis of the temperature dependences obtained using physical and numerical experiments indicates a fairly good agreement between the results.

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来源期刊
Russian Electrical Engineering
Russian Electrical Engineering Engineering-Electrical and Electronic Engineering
CiteScore
1.50
自引率
0.00%
发文量
70
期刊介绍: Russian Electrical Engineering  is a journal designed for the electrical engineering industry and publishes the latest research results on the design and utilization of new types of equipment for that industry and on the ways of improving the efficiency of existing equipment.
期刊最新文献
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