Performance Enhancement of Shell and Tube Latent Thermal Storage System Using Copper Foam

Luna Sabah, J. Abdulateef
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Abstract

Latent Heat Thermal Storage (LHTS) based on Phase Change materials (PCMs) offers a promising solution for efficient utilization of intermittent energy from renewable sources. The primary limitation is the poor thermal conductivity of PCMs, which requires employing of thermal performance enhancement techniques. To enhance the thermal performance of PCM thermal energy storage, a copper foam with a high porosity is embedded with the PCM. A numerical simulation model has been developed to investigate the thermal behavior of two LHTS shell and tube configurations: pure PCM-LHTS (conventional LHTS) and PCM - copper-foam composite (foamed LHTS). The effect of the heat transfer fluid (HTF) temperature on the thermal response of LHTS during the charging process was considered. The results showed that the length of melting time for foamed LHTS was shorten about 82% as compared to conventional LHTS under the conditions of HTF temperature of 70°C and flow rate of 0.083 kg/sec. The results show that when the initial temperature of HTF for LHTS with foam was changed from 70°C to 75°C and then from 75°C to 80°C, the total charging time was enhanced by about 33 % and 29%, respectively. Based on results of temperature variation and liquid fraction of PCM, employing copper foam improved the charged thermal load during the charging process compared to LHTS without foam.
利用泡沫铜增强壳管潜热储热系统的性能
基于相变材料(PCMs)的潜热储热(LHTS)为有效利用可再生能源的间歇性能源提供了一个很有前途的解决方案。主要的限制是pcm的导热性差,这需要采用热性能增强技术。为了提高PCM储能系统的热性能,在PCM中嵌入高孔隙率的泡沫铜。建立了一种数值模拟模型,研究了纯PCM-LHTS(常规LHTS)和PCM-泡沫铜复合材料(发泡LHTS)两种壳管结构的热行为。考虑了充注过程中传热流体温度对LHTS热响应的影响。结果表明:在HTF温度为70℃、流量为0.083 kg/sec的条件下,发泡LHTS的熔化时间比常规LHTS缩短约82%;结果表明,当含泡沫LHTS的HTF初始温度从70℃变化到75℃,再从75℃变化到80℃时,总充注时间分别延长了33%和29%左右。根据温度变化和PCM液分的结果,与不含泡沫的LHTS相比,使用泡沫铜的LHTS在充电过程中提高了充电热负荷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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