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Performance investigation of high-temperature sensible heat thermal energy storage system during charging and discharging cycles

机译:充放电循环过程中高温显热储热系统的性能研究

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This paper presents the thermal modelling and performance predictions of high-temperature sensible heat storage (SHS) models of 50 MJ capacity designed for solar thermal power plant applications in the temperature range of 523-648 K. The SHS unit is a regenerator-type heat exchanger which stores/releases the heat on passing hot/cold heat transfer fluid (HTF) through the tubes embedded into it. A mathematical model of cylindrical configuration with embedded multi-tube is developed employing concrete and cast steel as the storage media. The number of embedded charging/discharging tubes in the storage model is optimized based on the charging time using the finite element method-based simulation tool, COMSOL Multiphysics. Numerically predicted results match well with the data reported in the literature. Thermal performance parameters of SHS bed such as charging/discharging time, energy stored/recovered, charging/discharging energy efficiency and overall efficiency have been evaluated. Axial variations of HTF temperature during charging/discharging cycle are analysed, and the parametric studies are carried out by varying the flow rate of HTF. For cast steel bed, the increase in HTF velocity resulted in the proportional reduction in charging/ discharging time, while these effects in concrete were less because of its low thermal conductivity.
机译:本文介绍了为523-648 K温度范围内的太阳能热电厂应用设计的容量为50 MJ的高温显热存储(SHS)模型的热模型和性能预测。SHS单元是蓄热式热能通过热/冷传热流体(HTF)通过嵌入其中的管来存储/释放热量的热交换器。利用混凝土和铸钢作为存储介质,开发了带有嵌入式多管圆柱结构的数学模型。使用基于有限元方法的仿真工具COMSOL Multiphysics根据充电时间优化存储模型中嵌入的充电/放电管的数量。数值预测结果与文献报道的数据非常吻合。已评估了SHS床的热性能参数,例如充电/放电时间,存储/回收的能量,充电/放电能效和总体效率。分析了充放电循环过程中HTF温度的轴向变化,并通过改变HTF的流量进行了参数研究。对于铸钢床,HTF速度的增加导致充电/放电时间成比例减少,而混凝土中的这些影响由于导热系数低而较少。

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