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Effect of installation angle of fins on melting characteristics of annular unit for latent heat thermal energy storage

机译:翅片的安装角度对潜热热能储存环形单元熔化特性的影响

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Latent heat thermal energy storage (LHTES) technology can solve the problem of a mismatch between energy supply and demand in time, space and intensity and thus has become a research on focus in energy and environmental protection. The low thermal conductivity of phase change materials (PCMs) is the primary bottleneck of the popularization application of LHTES technology. An effective way to solve this problem is adding fins into the PCM container to enhance heat transfer, there has been no report on the effect of the installation location of fins on the heat transfer characteristics of the PCM in a LHTES unit. To study the effect of fins installed at different locations on the heat transfer, this work have investigated the melting characteristics of PCM in an annular with different installation angle of fins (theta) via a numerical simulation method, which is based on an enthalpy-porous medium model. In addition, the numerical calculation results are verified via experimentation. On this basis, the melting processes of the PCM in horizontal, annular units with fins installed at five different values of theta under three fixed wall temperature conditions (60, 70, and 80 degrees C) have been simulated. The simulation results have been compared to those of the unit without fins. The results show that although fins inhibit natural convection, the addition of fins can lead to an increase in the melting rate and a decrease in the melting time due to an increase in the total amount of heat exchanged. Considering the entire melting process, the melting rate of the PCM in the unit with fins installed at theta = 0 degrees is maximum. When theta reaches 45, the further increase of theta has no marked impact on the melting rate of the PCM in the unit. Based on the trend of the change of the mean Nusselt number with the Fourier number (Fo), the heat transfer of the melting process of the PCM is divided into four stages. Additionally, the dimensionless criterion relationship between the melting fraction (f) and SteFoRa(1/6) when theta = 0 degrees is fitted as f = 0.24X(3) - 1.13X(2) + 1.82X, where X = SteFoRa(1/6). (C) 2016 Elsevier Ltd. All rights reserved.
机译:潜热热能存储技术可以解决能源供需在时间,空间和强度上的不匹配问题,因此已经成为能源与环境保护研究的热点。相变材料(PCM)的低导热性是LHTES技术推广应用的主要瓶颈。解决此问题的有效方法是在PCM容器中添加散热片以增强热传递,但尚未有关于散热片安装位置对LHTES单元中PCM的传热特性的影响的报道。为了研究安装在不同位置的散热片对传热的影响,这项工作通过基于焓-孔的数值模拟方法,研究了在不同散热片安装角度(θ)的环形中PCM的熔化特性。中型。另外,通过实验验证了数值计算结果。在此基础上,已经模拟了在三个固定壁温条件(60、70和80摄氏度)下,水平,环形单元中PCM的熔化过程,其中鳍片安装在五个不同的θ值。仿真结果已与不带翅片的单元进行了比较。结果表明,尽管散热片抑制了自然对流,但是由于增加了总的热交换量,散热片的添加可以导致熔化速率的增加和熔化时间的减少。考虑到整个熔化过程,在θ= 0度安装翅片的单元中,PCM的熔化速率最大。当θ达到45时,θ的进一步增加对单元中PCM的熔化速率没有明显的影响。根据平均努塞尔数随傅立叶数(Fo)的变化趋势,将PCM熔化过程的传热分为四个阶段。此外,当θ= 0度时,熔化分数(f)与SteFoRa(1/6)之间的无量纲标准关系拟合为f = 0.24X(3)-1.13X(2)+ 1.82X,其中X = SteFoRa( 1/6)。 (C)2016 Elsevier Ltd.保留所有权利。

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