Experimental Study On Melting and Solidification Cycle of a Hybrid Pin Fin/metal Foam Energy Storage Tank

Z. Du, Xinyu Huang, Yuanji Li, Gang Liu, Xiaohua Yang, Bengt Sundén
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Abstract

Phase change heat storage offers a practical solution to address the instability and intermittency of solar energy. While the thermal conductivity of heat storage medium (phase change material) is low hinders its large-scale application. Metal foam and fins have proven effective in enhancing heat transfer performance. This study establishes a visual phase change heat storage experimental platform to compare the heat storage and release performances of four different structures: pure paraffin, fins, metal foam, and fin-metal foam, throughout complete melting-solidification cycle. Experimental snapshots and real-time data acquisition are utilized to obtain phase interface changes and internal temperature variations at different time intervals, enabling a quantitative comparison of melting and solidification time and corresponding temperature responses. The findings reveal that both fins and metal foam effectively improve melting and solidification performance, with fins exhibiting more pronounced temperature responses, while metal foam demonstrates enhanced temperature uniformity. The comprehensive utilization of the fin-foam metal structure demonstrates the best heat storage/release performance. Compared to the pure PCM structure, heat storage and release time are reduced by 61.61% and 82.01%, respectively, while the average temperature response during the heat storage and release process improves by 122.41% and 429.75%.
针翅/金属泡沫混合储能罐的熔化和凝固循环实验研究
相变储热为解决太阳能的不稳定性和间歇性问题提供了一种实用的解决方案。但储热介质(相变材料)的热传导率较低,阻碍了其大规模应用。事实证明,金属泡沫和鳍片能有效提高传热性能。本研究建立了一个可视化相变储热实验平台,比较纯石蜡、鳍片、金属泡沫和鳍片-金属泡沫四种不同结构在整个熔化-凝固循环过程中的储热和放热性能。利用实验快照和实时数据采集来获取不同时间间隔的相界面变化和内部温度变化,从而对熔化和凝固时间以及相应的温度响应进行定量比较。研究结果表明,鳍片和金属泡沫都能有效改善熔化和凝固性能,其中鳍片的温度响应更明显,而金属泡沫的温度均匀性更佳。鳍片-金属泡沫结构的综合利用表现出最佳的蓄热/释热性能。与纯 PCM 结构相比,蓄热和释放时间分别缩短了 61.61% 和 82.01%,蓄热和释放过程中的平均温度响应分别提高了 122.41% 和 429.75%。
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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