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Computational studies on a latent thermal energy storage system with integral heat pipes for concentrating solar power

机译:带有集成式热管的潜在热能存储系统的计算研究,用于集中太阳能

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Latent thermal energy storage system (LTES) is an effective technique for storing solar energy and load management with advantages including isothermal operation and high-energy storage density. However, the low thermal conductivity of the phase change material (PCM) in a LTES reduces the melting and solidification rates of the PCM, which is sought to be increased for a viable operation of the energy storage system. This paper investigates an approach to reducing the thermal resistance of PCM through embedded heat pipes which are passive heat transfer devices that efficiently transfer large amount of thermal energy between the phase change material and a heat transfer fluid (HTF). A transient three-dimensional computational analysis of a shell-and-tube LTES embedded with heat pipes is performed for melting (charging) and solidification (discharging) to determine the position of melt front, energy stored and effectiveness of the heat pipe embedded configurations as a function of time. The influence of the number and orientation of heat pipes and the configuration of the system are analyzed to identify designs that lead to improved effectiveness.
机译:潜热能存储系统(LTES)是一种有效的太阳能存储和负荷管理技术,具有等温运行和高能量存储密度等优点。但是,LTES中相变材料(PCM)的低导热率会降低PCM的熔化和固化速率,这对于能量存储系统的可行运行是希望增加的。本文研究了一种通过嵌入式热管降低PCM热阻的方法,嵌入式热管是一种被动式传热设备,可以在相变材料和传热流体(HTF)之间高效地传递大量热能。对装有热管的管壳式LTES进行瞬态三维计算分析,以进行熔融(装料)和固化(排放),以确定熔体前沿的位置,能量存储和热管嵌入配置的有效性,如时间的函数。分析了热管数量和方向以及系统配置的影响,以识别可提高效率的设计。

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