NematpourKeshteli Abolfazl, Iasiello Marcello, Langella Giuseppe, Bianco Nicola
Dipartimento di Ingegneria Industriale, Università degli Studi di Napoli Federico II, P.le Tecchio 80, 80125, Napoli, Italy.
Heliyon. 2024 Aug 13;10(16):e36105. doi: 10.1016/j.heliyon.2024.e36105. eCollection 2024 Aug 30.
The thermal performance of a PCM-based triple-tube lobed heat exchanger storage system is here simulated and optimized, including performance improvements via lobed surfaces, Y-shaped fins, dispersed multi-walled carbon nanotubes, and metal foams, to be used in combination, or singly. Such computations are done with the finite volume method under different operating conditions. The reason behind this study is to look for solutions to improve the poor thermal performance of phase change materials (PCMs) as thermal energy storage materials, that limits their compactness and instantaneous heat stored/released. This is the first time that a throughout analysis of this aspect is presented. The result showed that higher modified Stefan number allow to improve melting time of a 50.88 %. The inclusion of lobes and fins resulted in a reduction of roughly 30.54 % in time needed for melting completion, compared to straight tubes. This reduction increases to 74.26 % when lobes are combined with both nanoparticles and metal foam, and to 73.60 % with just foam. The best solution also provides a 228.34 W mean heat rate. This study becomes an option to design tube-in-tube energy storage systems, where the best improvement is achieved by considering a lobed surface together with nano/PCM and foam, whereas the highest enhancement comes from using a metal foam.
本文对基于相变材料(PCM)的三管叶形蓄热式换热器系统的热性能进行了模拟和优化,包括通过叶形表面、Y形翅片、分散的多壁碳纳米管和金属泡沫来改善性能,这些可单独使用或组合使用。此类计算是在不同运行条件下采用有限体积法完成的。开展本研究的原因是寻找解决方案,以改善相变材料作为热能存储材料时较差的热性能,这种性能限制了它们的紧凑性以及即时存储/释放的热量。这是首次对这方面进行全面分析。结果表明,较高的修正斯蒂芬数可使熔化时间缩短50.88%。与直管相比,加入叶形结构和翅片后,熔化完成所需时间大约减少了30.54%。当叶形结构与纳米颗粒和金属泡沫同时使用时,这种减少幅度增加到74.26%,仅与泡沫一起使用时减少幅度为73.60%。最佳方案还提供了228.34W的平均热流率。本研究为设计套管式储能系统提供了一种选择,其中通过将叶形表面与纳米颗粒/相变材料和泡沫相结合可实现最佳改进,而最高的增强效果来自使用金属泡沫。