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A comprehensive review of hydrodynamic mechanisms and heat transfer characteristics for microencapsulated phase change slurry (MPCS) in circular tube

机译:圆管微胶囊相变浆料(MPCS)的水动力机理和传热特性的全面综述

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摘要

Microencapsulated phase change slurry (MPCS) shows remarkable merits especially in narrow temperature range and high energy density for the thermal energy application. It combines the advantages of the carrier fluid and the phase change materials. However, the performance of slurry is limited by the poor thermal conductivity and pumping energy of microcapsules. This paper reviews the extensive research findings of the rheological behaviours, the hydrodynamic properties, the heat transfer characteristics and the heat transfer enhancement for MPCS. The aims are to remark the research progresses about the flow and heat transfer performance, as well as to promote further study in this field. The paper presents the basic thermophysical parameters for MPCS, such as phase change temperature, specific heat capacity, thermal conductivity and sub-cooling. Then, the state of the art in rheological behaviours and hydrodynamic properties for MPCS are analysed. The present work compares the existing literatures towards to the forced convective heat transfer characteristics achieved through experimental and numerical investigations. Furthermore, the melting/solidifying process, the enhancement mechanisms of heat transfer and a plenty of enhanced techniques are elaborated. This paper also reports several representative applications of MPCS in recent years. It is expected that this work can give interesting and valuable insights on the hydrodynamic mechanisms and heat transfer characteristics of MPCS, and promote the further studies in strengthening the comprehensive performance of MPCS.
机译:微囊化相变浆料(MPCS)具有显着的优点,尤其是在热能应用中温度范围狭窄和能量密度高的情况下。它结合了载液和相变材料的优点。但是,浆料的性能受到微胶囊导热性和泵送能量差的限制。本文综述了MPCS的流变行为,流体力学特性,传热特性和传热增强的广泛研究成果。目的是标记有关流动和传热性能的研究进展,并促进该领域的进一步研究。本文介绍了MPCS的基本热物理参数,例如相变温度,比热容,导热系数和过冷。然后,分析了MPCS的流变行为和流体力学特性的最新状况。本工作将现有文献与通过实验和数值研究获得的强制对流换热特性进行了比较。此外,还详细阐述了熔化/固化过程,传热的增强机理以及许多增强技术。本文还报告了近年来MPCS的几种代表性应用。期望这项工作能够对MPCS的水动力机理和传热特性给出有趣而有价值的见解,并在加强MPCS综合性能方面促进进一步的研究。

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