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Thermal Modeling of Helium Cooled High-Temperature Superconducting DC Transmission Cable

机译:氦冷却高温超导直流输电电缆的热模型

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摘要

The recent increase in distributed power generation is highlighting the demand to investigate and implement better and more efficient power distribution grids. High-temperature superconducting (HTS) DC transmission cables have the potential to address the need for more efficient transmission and their usage is expected to increase in the future. Thermal modeling of HTS DC cables is a critical tool to have in order to better understand and characterize the operation of such transmission lines. This paper introduces a general computational model for a HTS DC cable. A physical model, based on fundamental correlations and principles of classical thermodynamics, mass and heat transfer, was developed and the resulting differential equations were discretized in space. Therefore, the combination of the physical model with the finite volume scheme for the discretization of the differential equations is referenced as Volume Element Model, (VEM). The model accounts for heat transfer by conduction, convection and radiation obtaining numerically the temperature distribution of superconductive cables operating under different environmental, operational and design conditions. As a result, the model is expected to be a useful tool for simulation, design, and optimization of HTS DC transmission cables.
机译:最近分布式发电的增长突出了对研究和实施更好,更高效的配电网的需求。高温超导(HTS)直流传输电缆具有解决更高效传输需求的潜力,并且在未来,其使用量有望增加。 HTS DC电缆的热模型是一个关键工具,可以更好地理解和表征此类传输线的运行。本文介绍了HTS DC电缆的通用计算模型。根据基本的相关性和经典热力学,传质和传热的原理,建立了一个物理模型,并将所得的微分方程在空间中离散化。因此,将物理模型与有限体积方案的组合用于微分方程的离散化称为体积元素模型(VEM)。该模型考虑了通过传导,对流和辐射进行的热传递,从而获得了在不同环境,运行和设计条件下运行的超导电缆的温度分布的数值。因此,该模型有望成为HTS DC传输电缆的仿真,设计和优化的有用工具。

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