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Estimation of Thermal Instabilities in Soils around Underground Electrical Power Cables

机译:地下电力电缆周围土壤热稳定性估算

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The decentralized production of electrical energy from wind requires the installation of more and more underground power cables. From an economic standpoint it is very important to estimate the cables' lifetime, which strongly depends on the temperature. A correct estimation of cable temperature requires an accurate description of the heat balance equation around the cable. Most of the models used to assess heat dissipation from cables, however, do not consider that the soil thermal conductivity strongly depends on soil water content and hydraulic dynamics in the vicinity of the cable. The high temperature around the cable induces a water-vapor cycle in the soil: liquid water evaporates near the cable, and this vapor condensates in the more distant and colder parts of the soil. Above a critical heat dissipation rate, the soil around the cable dries out and the water-vapor cycle breaks down. In this study, we analytically estimated the critical heat dissipation rate as a function of soil type, soil temperature, and water content. We validated the analytical estimation by comparison to a numerical solution of the coupled heat-water-vapor transport for various soil types and conditions. The numerical code was validated by simulating a soil drying experiment. The proposed estimation of thermal instabilities in soils could become a powerful tool in the design of underground electrical power cable systems.
机译:从风中的电能分散生产需要安装越来越多的地下电力电缆。从经济的角度来看,估计电缆的寿命非常重要,这强烈取决于温度。正确估计电缆温度需要精确描述电缆周围的热平衡方程。然而,用于评估电缆散热的大多数模型,不认为土壤导热率强烈取决于电缆附近的土壤含水量和液压动力学。电缆周围的高温引起土壤中的水蒸气循环:液体水在电缆附近蒸发,并且这种蒸汽在土壤的距离和较冷的部分中凝结。高于临界散热速率,电缆周围的土壤干燥,水蒸气循环突破。在这项研究中,我们分析估计了土壤类型,土壤温度和含水量的临界散热速率。通过与各种土壤类型和条件的耦合热水蒸气运输的数值溶液进行验证,验证了分析估计。通过模拟土壤干燥实验验证了数值代码。建议的土壤热稳定性估算可能成为地下电力电缆系统设计中的强大工具。

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