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Heat transfer enhancement of charging and discharging of phase change materials and size optimization of a latent thermal energy storage system for solar cold storage application

机译:相变材料充电和放电的传热提高,阳光冷藏应用潜热能存储系统的尺寸优化

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In this work, phase change material (PCM) is considered as thermal energy backup system for solar cold storage applications when there is peak power demand or power failure or no sun shines situations. A numerical study of solidification (charging) and melting (discharging) of PCM validated by experimental data is performed to explore the performance of a unique latent heat thermal energy storage (LHTES) system. The LHTES unit (PCM pack) occupied with PCM acts as a heat exchanger made up from evaporator tube along with rectangular metal fins which enhance the heat transfer during phase changing of PCM. Evaporator with 5, 8, 10, and 12 longitudinal aluminum fins, and without fin inside the PCM pack of six different thicknesses (4.5 cm, 5.0 cm 5.5 cm, 6.0 cm, 6.5 cm, and 7.0 cm) are considered to investigate the charging and discharging characteristics of PCM in our present study. To obtain the best performance from the PCM pack, heat transfer characteristics and temperature distributions of PCM, and the effect of variation of thickness of the PCM pack are studied through computational fluid dynamics (CFD) simulation. Solidification and melting model of ANSYS Fluent 15.0 package employing enthalpy-porosity technique is used to develop 3-D simulation models. Faster solidification, as well as a higher energy storage capacity and heat flux during melting is found for the PCM pack of 6.5 cm thickness with higher number of fins. A lab scale experimental set-up is fabricated to compare the present simulation results which shows reasonably well validation during both the charging and discharging.
机译:在这项工作中,相变材料(PCM)被视为用于太阳能冷存储应用的热能备用系统,当有峰值电源或电源故障或没有阳光照射的情况时。通过实验数据验证的PCM的凝固(充电)和熔化(放电)的数值研究进行了探索独特潜热热能存储(LHTES)系统的性能。用PCM占用的LHTES单元(PCM包装)用作由蒸发器管组成的热交换器以及矩形金属翅片,该鳍片在PCM的相变期间增强了热传递。蒸发器有5,8,10和12个纵向铝翅片,并且在六种不同厚度的PCM包内没有翅片(4.5cm,5.0cm 5.5cm,6.0cm,6.5cm,7.0cm),以研究充电我们现在研究中PCM的放电特性。为了通过计算流体动力学(CFD)仿真研究了从PCM包装的最佳性能,传热特性和PCM的温度分布以及PCM包的厚度变化的效果。使用焓 - 孔隙率技术的ANSYS流畅的15.0包的凝固和熔化模型用于开发3D模拟模型。在熔融期间,较快的凝固以及较高的储能容量和热通量,用于6.5厘米厚度,具有较多的翅片。制造实验室规模的实验装置,以比较本发明的模拟结果,该结果在充电和放电期间显示出合理良好的验证。

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