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Simulation of Triplex Tube Thermal Energy Storage System Using High Temperature Phase Change Material

机译:采用高温相变材料的三重管蓄热系统模拟

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To increase the capacity factor of a concentrated solar thermal power plant (CSTPP) beyond the hours of sunlight, the use of thermal energy storage systems (TES) can be a promising solution. Phase change materials (PCMs) can store latent thermal energy in the course of the melting process and release it when solar energy is not available. Generally, PCMs have low thermal conductivity. One of the most commercially promising solutions is the application of an extended heat transfer surface inside the PCM container. Moreover, the distance of the heat transfer fluid (HTF) to the core of the PCM in a TES system can affect the storage performance. Accordingly, a triplex tube heat exchanger with eight fins is considered in this paper, to investigate the impact of the different velocity of HTF and different entrance pattern in a vertical PCM container. Notably, the middle enclosure of the triplex tube is filled with PCM. Numerical analysis using an enthalpy porosity technique revealed that increasing HTF velocity reduces the charging time. Also, when the HTF enters from the bottom of the container, the storage time will diminish owing to a natural convection side-effect, but if the HTF flows downward, the amount of sensible thermal energy storage is higher than in the other cases.
机译:为了提高集中太阳能热发电厂(CSTPP)在日照时间以外的容量因数,使用热能存储系统(TES)可能是一个很有前途的解决方案。相变材料(PCMs)可以在熔化过程中储存潜热,并在太阳能不可用时释放潜热。通常,多晶聚合物的导热系数较低。最具商业前景的解决方案之一是在PCM容器内应用扩展的传热表面。此外,在TES系统中,传热流体(HTF)到PCM核心的距离会影响存储性能。因此,本文考虑了一种八翅片三重管换热器,以研究在垂直PCM容器中不同的HTF流速和不同的入口模式对换热器性能的影响。值得注意的是,三芯管的中间外壳充满了PCM。采用焓-孔隙率技术进行的数值分析表明,提高HTF速度可以缩短充电时间。此外,当HTF从容器底部进入时,由于自然对流副作用,储存时间将缩短,但如果HTF向下流动,显热储能量将高于其他情况。

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