Comparative CFD Analysis of Heat Transfer Enhancement in Phase Change Thermal Energy Storage with and without Fins for Solar Energy Storage

Eyosiyas Yohannis, B. A. Zeru, Nebiyu Bogale
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Abstract

Solar energy storage faces challenges due to its intermittent nature. Phase Change Thermal Energy Storage (PC-TES) offers a promising solution, utilizing materials that store energy by changing their phase. This study presents a comprehensive Comparative Computational Fluid Dynamics (CFD) Analysis aimed at evaluating the heat transfer enhancement in phase change thermal energy storage configurations with and without fins. The numerical simulations, conducted using ANSYS (fluent), investigate the dynamic interactions within the system during the charging phase. We developed detailed CFD models representing PC-TES systems with and without fins, investigating their thermal performance during melting under controlled conditions. The analysis focused on quantifying the impact of fins on key metrics like melting time and temperature distribution. Our results demonstrate the significant benefits of fin integration. Fins enhanced heat transfer area, leading to 33.33% faster melting compared to finless configurations. They created uniform temperature distribution by minimizing the thermal gradient within PCM. This thermal enhancement is due to combined effect of using Nanofluid as heat transfer fluid and use of fins. Overall, this study concludes that incorporating fins in PC-TES systems offers a potent strategy for significantly improved heat transfer and faster energy storage, highlighting their potential for efficient and cost-effective solar energy capture and utilization.
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有鳍片和无鳍片太阳能相变热储能传热增强的 CFD 对比分析
太阳能储能因其间歇性而面临挑战。相变热能储存(PC-TES)利用通过改变相位来储存能量的材料,提供了一种前景广阔的解决方案。本研究介绍了全面的计算流体动力学(CFD)比较分析,旨在评估有鳍片和无鳍片相变热能存储配置的传热增强效果。使用 ANSYS (fluent) 进行的数值模拟研究了充电阶段系统内的动态相互作用。我们开发了详细的 CFD 模型,代表了带鳍片和不带鳍片的 PC-TES 系统,研究了它们在受控条件下熔化过程中的热性能。分析的重点是量化翅片对熔化时间和温度分布等关键指标的影响。我们的结果证明了翅片集成的显著优势。翅片增强了传热面积,与无翅片配置相比,熔化速度提高了 33.33%。通过最大限度地减少 PCM 内部的热梯度,翅片形成了均匀的温度分布。这种热量增强是由于使用纳米流体作为传热流体和使用鳍片的共同作用。总之,这项研究得出结论,在 PC-TES 系统中加入翅片是一种有效的策略,可显著改善传热效果并加快能量存储,从而凸显其在高效、经济地捕获和利用太阳能方面的潜力。
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