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Computational Analysis of Sensible Energy Storage for Low-Temperature Application

机译:低温施用明智能量储存的计算分析

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A computational model of regenerator-type sensible energy storage (SES) is developed for 1 MJ storage capacity for low-temperature application. Water and concrete are selected as the heat transfer fluid (HTF) and the material to store energy, respectively. Effects of tube diameter and pitch circle diameter (PCD) on the charging time, discharging time, charging efficiency, discharging efficiency are investigated in the present study. The software named COMSOL Multiphysics, works on finite element method (FEM), is used to carry out the computational work. The computational model is found to be well-matched with the available literature. The effective charging and discharging time decrease with the increasing tube diameter and PCD. The charging efficiencies with PCD 4 cm, 5 cm, and 6 cm are 0.75, 0.89, and 0.93, respectively and with 1.03, 1.37, and 1.71 cm tube diameter are 0.79, 0.89, and 0.93, respectively, at the effective charging time. Further, variations of discharging efficiencies are also investigated.
机译:开发了一种用于低温应用的1 MJ存储容量的再生器型明智能量存储(SES)的计算模型。选择水和混凝土作为传热流体(HTF)和储存能量的材料。管直径和俯仰圆直径(PCD)对充电时间,放电时间,充电效率,放电效率,对本研究的影响。名为COMSOL Multiphysics的软件,用于有限元方法(FEM),用于执行计算工作。发现计算模型与可用文献充分匹配。随着管道直径和PCD的增加,有效充电和放电时间减小。 PCD 4 cm,5cm和6cm和6cm的充电效率分别为0.75,0.89和0.93,分别为1.03,1.37和1.71cm管直径,分别在有效充电时间下分别为0.79,0.89和0.93。此外,还研究了排出效率的变化。

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