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Effect of varying extent of PCM capsule filling on thermal stratification performance of a storage tank

机译:PCM胶囊填充填充储罐热分层性能的影响

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Among the different pathways of improving the energy storage and energy utilization in a thermal energy storage system, the formation of thermal stratification in hot water tanks is a promising technology. In this study, we developed a novel numerical model to assess the thermal stratification performance in a hot water tank due to addition of encapsulated phase change material (PCM) by varying the bed height, bed porosity and the encapsulation diameter. The formulation of the present numerical model is devoid of complicated momentum and energy equations. A set of simplified energy balance equations is developed to account for heat transfer between the heat transfer fluid (HTF) and the PCM considering local thermal non-equilibrium. The temperature profile at the outlet of the storage tank during charging process demonstrates an enhancement in the Richardson number by 58.3%, at the end of the charging process, upon doubling the PCM bed height, and the corresponding improvement in the charging efficiency is found to be 54.6%. The melting point of PCM plays a pivotal role on the extent of stratification and storage efficiency, as it dictates the amount of heat diffusion towards the bottom section of TES. During discharge phase, if the HTF flow rate is doubled from the nominal value of 2 L/min, the extraction efficiency is enhanced by similar to 16.7%. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在改善热能储存系统中的能量存储和能量利用的不同途径中,热水箱中热分层的形成是一个有前途的技术。在这项研究中,我们开发了一种新颖的数控模型,以通过改变床高度,床孔隙率和封装直径来评估由于添加封装的相变材料(PCM)的热水箱中的热分层性能。本数量模型的制剂缺乏复杂的动量和能量方程。开发了一组简化的能量平衡方程以考虑考虑局部热非平衡的传热流体(HTF)和PCM之间的热传递。在充电过程中储罐出口处的温度曲线在充电过程的结束时,在充电过程的结束时,储存罐的出口中的增强率为58.3%,并且在加倍PCM床床高度时,发现充电效率的相应改进是54.6%。 PCM的熔点在分层和储存效率的程度上起着枢轴作用,因为它决定了朝向TES底部的热扩散量。在放电阶段期间,如果HTF流量从标称值加倍2L / min,则提取效率随着16.7%而增强。 (c)2019 Elsevier Ltd.保留所有权利。

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