500kV高压直流海底输电电缆温度场仿真及容量优化

Umer Farooq, Fan Yang, J. Shaikh, M. S. Bhutta, Farooq Aslam, Wu Tao, Liao Jinxian, I. Haq
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引用次数: 3

摘要

高压直流海底电力电缆结构复杂,制造工艺要求高。海上风电场的高压直流海底电缆通常要经过多个不同敷设环境的敷设段。在某些截面,散热条件可能不利。为了提高输电线路的安全性,有必要对不同敷设条件下电力电缆的电缆温度场和电流进行研究,找出瓶颈区段,并对这些薄弱区段的电流进行改善。以500kV交联聚乙烯海底电力电缆为研究对象,采用有限元建模方法对敷设在无沟槽土壤中的海底电缆、敷设在海滩段有水流强制冷却的管道中的海底电缆的电磁热耦合模型进行了研究,并利用COMSOL Multiphysics软件对温度场和容量进行了研究。结果表明,管内水循环影响电缆的散热,使电缆的容量明显增大。此外,当管内水流速率为2.78 L/s时,电缆的电流最优,通过该模型的实现,电缆的电流可增加到650A。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Temperature Field Simulation and Ampacity Optimization of 500kV HVDC Submarine Transmission Cable
The HVDC submarine power cables have complex structure and needs extraordinary manufacture process requirements. The HVDC submarine cable in an offshore wind farm usually goes through multiple laying sections with different laying environment. And in some of the sections, the heat dissipation condition may be unfavorable. To improve the safety of the transmission line, it is obligatory to study the cable temperature field and ampacity of power cable under different laying conditions and find the bottleneck sections, together with the methods to improve the ampacity of these weak sections. A 500kV XLPE submarine power cable is taken as the study object, the finite element modeling (FEM) is used to study the electromagnetic thermal coupling model of the submarine cables laying in the soil without trench, in the tube with water flowing for the purpose of forced cooling at beach section is established respectively to study the temperature field and ampacities by using COMSOL Multiphysics software. The results indicate that, water circulating in the tube would affect the cable heat dissipation and significantly ampacity is increased. Moreover, it has been noted that when the water flow rate is 2.78 L/s in the tube, the ampacity of cable is optimum and by the implementation of this proposed model the ampacity can be increased up to 650A.
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