Electrothermal Coupling Simulation of Termination Insulation of Superconducting Energy Pipeline

B. Song, Xuze Gao, M. Ren, M. Dong, Tianxin Zhuang
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Abstract

Superconducting DC energy pipeline realizes the mixed transportation of electric energy and liquid natural gas, which is a high efficiency and low energy consumption method of redistribution of energy. Superconducting DC electric termination is one of the cores equipment of superconducting DC energy pipelines which bears various extreme conditions such as electric field, large temperature gradient, mechanical stress, etc. Under the influences of multiphysics, the electrical and thermal properties of the terminal materials will change to varying degrees, and these changes will cause distortion of the physical field in turn. Therefore, in the design of the terminal structure, multiple physical interactions and mutual cooperation methods need to be considered. Under the two-way coupling of multi-physics and terminal material parameters, the physical simulation model of superconducting energy pipeline is established, and the electric field distortion in this model are analyzed.In this article, the physical model of superconducting energy pipeline terminal is established by COMSOL. And we find that the change rule of the material conductivity with temperature counts a great deal in the distribution of the electric field thermal field in the terminal. At the same time, the cooling power of liquid nitrogen influences the temperature distribution, thus affect the electric field indirectly to a certain extent. Therefore, in the optimization design of the terminal, selection of insulation materials, how to control the heat generation should take into consideration. This study provides theoretical support for the insulation optimization design of superconducting energy pipeline terminals.
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超导能量管道端部绝缘的电热耦合仿真
超导直流能量管道实现了电能与液化天然气的混合输送,是一种高效、低能耗的能量再分配方式。超导直流电端是超导直流能量管道的核心设备之一,它承受着电场、大温度梯度、机械应力等各种极端条件。在多物理场的影响下,终端材料的电学性能和热学性能会发生不同程度的变化,而这些变化又会依次引起物理场的畸变。因此,在终端结构的设计中,需要考虑多种物理相互作用和相互合作的方式。在多物理场和终端材料参数双向耦合的情况下,建立了超导能量管道的物理仿真模型,并对模型中的电场畸变进行了分析。本文利用COMSOL软件建立了超导能量管道终端的物理模型。研究发现,材料电导率随温度的变化规律对端子内电场和热场的分布有重要影响。同时,液氮的冷却功率影响温度分布,从而在一定程度上间接影响电场。因此,在对端子进行优化设计时,应考虑到绝缘材料的选择、如何控制发热量。该研究为超导能源管道终端的保温优化设计提供了理论支持。
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