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The performance analysis of a new thermal backfill material for underground power cable system

机译:新型地下电缆热回填材料的性能分析

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Lafarge Gruntar (TM) material is proposed in this paper as a new thermal backfill component, and different mass fractions such as 5%, 10%, and 15% are examined. The thermal properties of the developed backfill are determined by experiments with respect to water content and time. Based on the experimental data it is found that the 15% mass fraction Lafarge Gruntar (TM) material provides the most favorable thermal conductivity i.e. over 1.00 W/(m K) in the dry state. This paper also presents a thermal performance optimization procedure for the high voltage underground power cable system. The new thermal backfill material is considered to be installed within the cable system to improve its thermal performance. The analyzed system consists of three underground power cables situated in a flat formation (in line arrangement) in thermal backfill, buried in the native soil. To avoid extensive mechanical loads caused by vibrations, when locating beneath a paved ground (e.g. under road crossings), the cables are situated in High Density Polyethylene (HDPE) casing pipes filled with sand bentonite mixture. The pipes are then placed into a thermal backfill and buried in the native soil. The Installation of thermal backfill material is relatively expensive since in many cases the buried line is installed over many kilometers. Therefore, it is important to determine the optimal dimensions of the cable bedding layer to minimize the material and installation costs while keeping efficient heat dissipation from the cables. The momentum-type Particle Swarm Optimization (PSO) solver, with a dynamic penalty function, is used to minimize the cable backfill cross-sectional area while not exceeding the allowable temperature of the cable operation. The performed optimization procedure obtains the converged solution. The temperature distribution in soil, cables, and the cable backfill layer 1is determined using the Finite Element Method. The Campbell - de Vries thermal conductivity model is employed for the soil surrounding the underground power cable system. An MATLAB code is written for solving the heat conduction equation and to determine the temperature distribution within the underground power cable system. By using the momentum-type Particle Swarm Optimization algorithm, it is possible to design the best-found dimensions of the cable bedding layer (width and height). Moreover, the dynamic penalty function employed in the optimization procedure has assured the determination of the maximum temperature of cable conductor close to its best-found value. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文提出了Lafarge Gruntar(TM)材料作为一种新的热回填组件,并研究了不同的质量分数,例如5%,10%和15%。通过实验就水含量和时间确定发达的回填的热性质。根据实验数据,发现15%质量分数的拉法基·格伦塔尔(Lafarge Gruntar TM)材料提供了最有利的导热率,即在干燥状态下超过1.00W /(m·K)。本文还提出了高压地下电力电缆系统的热性能优化程序。新的热回填材料被认为已安装在电缆系统中,以改善其热性能。分析的系统由三根地下电力电缆组成,这些电缆以扁平形式(成行排列)位于热回填中,埋在原生土壤中。为避免振动引起的大量机械负载,将电缆放置在铺好的地面下方(例如,在交叉路口下方)时,电缆应位于填充有膨润土混合物的高密度聚乙烯(HDPE)套管中。然后将管道放入热回填中,并埋入原生土壤中。热回填材料的安装相对昂贵,因为在许多情况下,地下管线的安装距离长达数公里。因此,重要的是确定电缆衬垫层的最佳尺寸,以最大程度地减少材料和安装成本,同时保持电缆的有效散热。具有动态补偿功能的动量型粒子群优化(PSO)求解器用于使电缆回填横截面面积最小化,同时不超过电缆运行的允许温度。执行的优化过程将获得收敛的解。使用有限元方法确定土壤,电缆和电缆回填层1中的温度分布。 Campbell-de Vries导热系数模型用于地下电缆系统周围的土壤。编写了MATLAB代码,用于求解热传导方程并确定地下电缆系统内的温度分布。通过使用动量类型的粒子群优化算法,可以设计出电缆敷层的最佳尺寸(宽度和高度)。此外,优化过程中采用的动态补偿函数确保了确定电缆导体的最高温度接近其最佳值。 (C)2016 Elsevier Ltd.保留所有权利。

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