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Melting of PCM in a thermal energy storage unit: Numerical investigation and effect of nanoparticle enhancement

机译:PCM在热能存储单元中的熔化:纳米颗粒增强的数值研究和效果

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摘要

The present paper describes the analysis of the melting process in a single vertical shell-and-tube latent heat thermal energy storage (LHTES), unit and it is directed at understanding the thermal performance of the system. The study is realized using a computational fluid-dynamic (CFD) model that takes into account of the phase-change phenomenon by means of the enthalpy method. Fluid flow is fully resolved in the liquid phase-change material (PCM) in order to elucidate the role of natural convection. The unsteady evolution of the melting front and the velocity and temperature fields is detailed. Temperature profiles are analyzed and compared with experimental data available in the literature. Other relevant quantities are also monitored, including energy stored and heat flux exchanged between PCM and HTF. The results demonstrate that natural convection within PCM and inlet HTF temperature significantly affects the phase-change process. Thermal enhancement through the dispersion of highly conductive nanoparticles in the base PCM is considered in the second part of the paper. Thermal behavior of the LHTES unit charged with nano-enhanced PCM is numerically analyzed and compared with the original system configuration. Due to increase of thermal conductivity, augmented thermal performance is observed: melting time is reduced of 15% when nano-enhanced PCM with particle volume fraction of 4% is adopted. Similar improvements of the heat transfer rate are also detected
机译:本文介绍了单个立式管壳式潜热热能存储(LHTES)单元中熔化过程的分析,其目的是了解系统的热性能。该研究是使用计算流体力学(CFD)模型实现的,该模型通过焓法考虑了相变现象。为了阐明自然对流的作用,在液相变材料(PCM)中完全解决了流体流动问题。详细介绍了熔化前沿,速度场和温度场的不稳定变化。分析温度曲线并将其与文献中提供的实验数据进行比较。还监视其他相关量,包括存储的能量以及PCM和HTF之间交换的热通量。结果表明,PCM和入口HTF温度内的自然对流会显着影响相变过程。在本文的第二部分中考虑了通过在基础PCM中分散高导电性纳米颗粒而产生的热增强作用。对装有纳米增强PCM的LHTES单元的热性能进行了数值分析,并与原始系统配置进行了比较。由于导热系数的增加,观察到了增强的热性能:当采用颗粒体积分数为4%的纳米增强PCM时,熔化时间减少了15%。还发现了传热速率的类似改善

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