潜热蓄热计算方法

V. Zakharova, R. O. Faizullin, A. Baranenko, P. Kuznetsov
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引用次数: 0

摘要

相变材料(PCM)的应用是包括蓄冷在内的热能储存的一个有前途的方向。积累是由于相变(熔化)的潜热而进行的。本文介绍了PCM的数值和分析过程模型。它可以用来计算现有电池设计的参数。给出了含PCM的球形胶囊在放电过程中的热流密度值的计算数据。本文提出了一种在冷却剂中以球形容器形式存在的各种类型PCM冷却系统设计阶段进行蓄冷器工程计算的方法。该方法允许估计所需的胶囊的数量,以实现给定的冷却能力的系统。为了计算放电时间,提出了一个对应于容器表面周围强制流动的解析依赖关系。计算的初始数据是PCM的物理性质、胶囊材料的性质及其几何参数,以及从胶囊表面到冷却剂的传热系数。提出了以填料床形式布置PCM胶囊时计算传热系数的推荐依赖关系。通过与内径为64 mm、填充正十四烷的球形容器的计算数据进行比较,证实了所提出的解析依赖性。除霜时间的计算误差不超过3%。所提出的计算方法可用于球囊式潜热蓄能器的设计。这种LHTES还可以用于建筑物的空调系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Method for calculating latent heat thermal energy storage
Application of phase change material (PCM) is a promising direction of thermal energy storage, including cold. Accumulation is carried out due to the latent heat of the phase transition (melting). The article describes the information about the numerical and analytical process models for PCM. It can be used to calculate the parameters of existing battery designs. Calculated data on the value of the heat flux during the discharge of spherical capsules containing PCM are presented. The paper proposes a technique for engineering calculation of cold accumulators at the stage of designing cooling systems for various types of PCM located in the form of spherical containers in a coolant. The method allows estimating the number of capsules needed to achieve given cooling capacity of the system. To calculate the discharge time, an analytical dependence is proposed that corresponds to the forced flow around the container surface. The initial data for the calculation are the physical properties of the PCM, the properties of the capsule material, and its geometric parameters, as well as the coefficient of heat transfer from the surface of the capsule to the coolant. Recommended dependencies for calculating the heat transfer coefficient with the arrangement of capsules with PCM in the form of packed bed are presented. The proposed analytical dependences are confirmed by comparison with the calculated data for a spherical container with an inner diameter of 64 mm, filled with n‑tetradecane. The discrepancy in calculating the defrosting time was no more than 3 %. The calculation method presented can be used in the design of latent heat thermal energy storage (LHTES) filled with spherical capsules. Such LHTES can additionally be used for air conditioning systems in buildings.
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