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Finite element analysis to predict temperature rise tests in high-capacity substation connectors

机译:有限元分析可预测大容量变电站连接器中的温升测试

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摘要

In the last years there has been a considerable increase in electricity consumption and generation from renewable sources, especially wind and solar photovoltaic. This phenomenon has increased the risk of line saturation with the consequent need of increasing the capacity of some power lines. Considering the high cost and the time involved in installing new power lines, the difficulty in acquiring tower sites and the related environmental impacts, some countries are considering to replace conventional conductors with high-temperature low-sag (HTLS) conductors. This is a feasible and economical solution. In this study a numerical-finite element method (FEM) approach to simulate the temperature rise test in both conventional and high-capacity substation connectors compatible with HTLS technology is presented. The proposed coupled electric-thermal 3D-FEM transient analysis allows calculating the temperature distribution in both the connector and the conductors for a given current profile. The temperature distribution in conductors and connectors for both transient and steady state conditions provided by the proposed simulation method shows good agreement with experimental data.
机译:在过去的几年中,可再生能源,特别是风能和太阳能光伏的电力消耗和发电量已大大增加。这种现象增加了线路饱和的风险,因此需要增加某些电源线的容量。考虑到安装新电力线的高昂成本和时间,获取塔楼场地的难度以及相关的环境影响,一些国家正在考虑用高温低陷(HTLS)导体代替常规导体。这是一种可行且经济的解决方案。在这项研究中,提出了一种数值有限元方法(FEM)方法来模拟常规和与HTLS技术兼容的大容量变电站连接器中的温升测试。提出的耦合电热3D-FEM瞬态分析允许针对给定的电流曲线计算连接器和导体中的温度分布。所提出的仿真方法提供的导体和连接器在瞬态和稳态条件下的温度分布均与实验数据吻合良好。

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