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Thermal performance of a thermal-storage unit by using a multichannel flat tube and rectangular fins

机译:使用多通道扁管和矩形翅片的蓄热单元的热性能

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摘要

The low thermal conductivity of phase-change materials (PCMs) limits the widespread use of phase-change thermal-storage units (TSUs). This problem can be solved by expanding the heat-exchange area (HEA) in the PCM side. Related studies have shown that expanding HEA can greatly increase the heat-transfer rate of TSU. However, few studies have been able to increase the compactness factor (CF) of TSUs while expanding the HEA of the PCM side to become sufficiently large. In this work, a multichannel flat-tube phase-change TSU was constructed based on the CF and ratio of HEA to PCM volume (delta). The developed TSU uses a multichannel flat tube as the heat-exchange element, water as the heat-transfer flow (HTF), and lauric acid as the PCM. The delta and CF of the multichannel flat tube TSU are 238.91/m and 82%, respectively. The temperature distribution, power, and average effectiveness of the TSU at different HTF-injection modes, inlet temperatures, and mass-flow rates are studied experimentally. Results show that the multichannel flat tube exhibits excellent heat-transfer performance, and the convective heat-transfer coefficient under experimental conditions reaches 515 W/(m(2).k) or more. The maximum effectiveness during charge and discharge is 0.235 and 0.232, respectively. Moreover, the corresponding pressure loss and heat-transfer temperature difference between the inlet temperature and melting point of PCM are 3986 Pa and 22 degrees C, respectively. Results also show that delta and CF are parameters that need to be fully considered when designing a practical TSU.
机译:相变材料(PCM)的低导热性限制了相变储热单元(TSU)的广泛使用。通过扩展PCM侧的热交换面积(HEA)可以解决此问题。相关研究表明,扩大HEA可以大大提高TSU的传热速率。但是,很少有研究能够在扩展PCM端的HEA使其变得足够大的同时增加TSU的紧凑度因子(CF)。在这项工作中,基于CF和HEA与PCM体积比(δ)构建了多通道扁管相变TSU。研发的TSU使用多通道扁平管作为热交换元件,使用水作为传热流(HTF),使用月桂酸作为PCM。多通道扁平管TSU的增量和CF分别为238.91 / m和82%。实验研究了在不同的HTF注入模式,入口温度和质量流量下,TSU的温度分布,功率和平均效率。结果表明,该多通道扁管具有优良的传热性能,在实验条件下的对流传热系数达到515 W /(m(2).k)或更高。充电和放电期间的最大效率分别为0.235和0.232。此外,PCM的入口温度与熔点之间的相应压力损失和传热温度差分别为3986Pa和22℃。结果还表明,在设计实用的TSU时,必须充分考虑delta和CF。

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