相变材料熔化过程换热器模型的对比分析:实验与数值研究

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2024-11-11 DOI:10.1002/htj.23217
Hussein Hatem Saleh, Munther Abdullah Mussa
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引用次数: 0

摘要

使用PCM的热能储存系统为高效的热应用提供了有前途的解决方案。本研究旨在为PCM熔化过程提供有价值的见解,并比较不同热交换器模型的热性能。该实验装置经过精心设计,可以模拟具有五个纵向铜翅片的壳管式换热器在特定条件下的运行情况。三种不同型号的热交换器,标记为型号A, B和C,测试了它们在熔化过程中的传热效率。对三种模型进行了数值模拟,并与实验结果进行了比较。模型A表示基准模型。它有均匀的鳍长、位置和角度。B型是改进后的设计,旨在加快熔化过程。这些改进包括较长的下翅片、较短的侧翅片和较低的翅片角度,以优化传热性能。C型采用了进一步的设计修改,更长的下鳍,更短的上鳍,和不同的下鳍位置。数值模拟和实验结果表明,三种模式的换热性能存在显著差异。测量到临界下降点的平均传热率是实际应用的关键参数。三种模型的对比表明,模型B在临界点前的平均换热率分别比模型A和模型C高出10%和4%,显示了其优越的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative Analysis of Heat Exchanger Models for Phase Change Material Melting Process: Experimental and Numerical Investigation

Thermal energy storage systems using PCM offer promising solutions for efficient thermal applications. This study aims to provide valuable insights into the PCM melting process and compare the thermal performance of different heat exchanger models. The experimental rig is carefully designed to simulate a shell and tube heat exchanger with five longitudinal copper fins at specific conditions. Three distinct models of the heat exchanger, labeled Models A, B, and C, were examined for their heat transfer efficiency during the melting process. Numerical simulations were conducted for the three models and compared with experimental results. Model A represented the benchmark model. It had uniform fin length, location, and angle. Model B was the modified design aimed at enhancing melting progress. These modifications included a longer lower fin, a shorter side fin compared to the reference, and a lower fin angle to optimize heat transfer performance. Model C incorporates further design modifications, with a longer lower fin, a shorter top fin, and different lower fin location. Numerical simulations and experimental observations revealed significant differences in heat transfer performance among the three models. The average heat transfer rates, measured up to the critical decline point, are crucial parameters for practical applications. A comparison among the three models showed that Model B surpassed the average heat transfer rate up to the critical point of Models A and C by 10% and 4%, respectively, demonstrating its superior practical applicability.

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来源期刊
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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