材料科学
聚丙烯
电植树
过程(计算)
相变
流量(数学)
复合材料
电击穿
电压
熔体流动指数
电子工程
机械工程
电气工程
光电子学
工程物理
工程类
机械
计算机科学
电介质
聚合物
局部放电
物理
操作系统
共聚物
作者
Zhe Fu,Jiaming Yang,Xu Yang,Dianyu Wang,Xindong Zhao,Hong Zhao,Xuan Wang
标识
DOI:10.1109/tdei.2025.3546200
摘要
Different from cross-linked polyethylene (XLPE) insulated cables, short-circuit current thermal shock will permanently deform the thermoplastic insulated cable’s insulation layer. To investigate the insulation eccentricity caused by short-circuit thermal shock, a numerical calculation method is established based on electromagnetic-thermal equations that simulate conductor heating, heat transfer equations that calculate the temperature distribution, and fluid control equations that simulate the melt flow. Based on the enthalpy-porosity model, the melt crystallization and rheological properties of screen and insulation materials are measured and introduced into heat transfer and fluid equations. Taking a high-voltage (HV) single-core polypropylene (PP)-based insulated cable as the object, the entire process of the cable undergoing short-circuit thermal shock under rated operating conditions is simulated. The simulation results indicate that the insulation structure continues to eccentrically deform within 4756 s after a single thermal shock, and the eccentricity ratio eventually reaches 3.28%, which remains far below the standard requirement of 10%. The insulation eccentricity ratio shows a linear accumulation relationship with the times of thermal shock. This simulation method provides a reference for the design and reliability assessment of thermoplastic insulation cables.
科研通智能强力驱动
Strongly Powered by AbleSci AI