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Numerical simulations and experimental verification of the thermal performance of phase change materials in a tube-bundle latent heat thermal energy storage system

机译:管束潜热能储能系统中相变材料热性能的数值模拟及实验验证

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摘要

Theoretical simulation and experimental validation of a new design tube-bundle latent-heat thermal storage (LHTS) working under solar-thermal application conditions was performed. A laboratory-scale experimental test rig was designed and tested for charging and discharging processes by using lauric acid and water as a phase-change material (PCM) and heat-transfer fluid (HTF), respectively. Six equal size tubes with 2 cm diameter and 45 cm length were clamped together with a central diameter tube for carrying the HTF. The temperature of the PCM during charging and discharging in the tubes in the bundle was measured radially. A 3D numerical model using ANSYS FLUENT was developed to simulate the time-dependent liquid fraction, temperature, and stored power of the PCM. The simulation was conducted after the successful validation with the experimental results at different HTF inlet temperatures (70 degrees C, 75 degrees C, and 80 degrees C) and (10 degrees C, 15 degrees C, and 20 degrees C) for charging and discharging processes, respectively, as well as with different Reynolds numbers (750, 1250, and 1750) for both processes. Although the design of the proposed LHTS was very simple, the results revealed that it has a superior thermal performance and fast charging and discharging period when compared to a double-pipe LHTS. Accordingly, the time was shortened by about 85.3% and 82.5% for charging and discharging processes, respectively.
机译:对一种新型管束潜热蓄热器(LHTS)在太阳能热应用条件下的运行进行了理论模拟和实验验证。以月桂酸和水为相变材料(PCM)和传热流体(HTF),设计并测试了实验室规模的充放电过程实验台。将六根直径为2cm、长度为45cm的等尺寸管子与一根中心直径管子夹在一起,以承载HTF。在管束中的管中,对PCM在充放电过程中的温度进行了径向测量。利用ANSYS-FLUENT建立了三维数值模型,模拟了相变材料的含液率、温度和储能随时间的变化。模拟是在成功验证了不同HTF入口温度(70摄氏度、75摄氏度和80摄氏度)和(10摄氏度、15摄氏度和20摄氏度)下充放电过程以及两种过程不同雷诺数(750、1250和1750)下的实验结果后进行的。虽然所提出的LHT的设计非常简单,但结果表明,与双管LHT相比,它具有优越的热性能和快速的充放电周期。因此,充电和放电过程的时间分别缩短了85.3%和82.5%。

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