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Modelling of heat exchangers based on thermochemical material for solar heat storage systems

机译:基于太阳能蓄热系统热化学材料的热交换器建模

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In solar thermal energy storage systems the operation modes involve charging and discharging This paper focuses only on the charging leading to an endothermic reaction and therefore an efficient heat exchanger is required to transfer the heat for fast and complete charging Two different heat exchangers are studied in this paper. A plate fin and helical coil heat exchangers embedded in a magnesium chloride bed is modelled and solved using the software Comsol 4.3a based on finite element method. Meshing analysis is performed for parameters sensibility and the results show a temperature variation of 13 °C (helical coil) and 19 °C (plate fin) in the material bed during the charging mode of the thermochemical heat storage system. The pressure distribution in the heat transfer fluid and the temperature distribution in the material bed are presented and the calculated overall heat transfer coefficient of 173 W/m~2·K (helical coil) and 236 W/m~2·K (plate-fin) are obtained on the base of the total heat transferred (Q) to through the system. The fluid flow is in turbulence regime (Re = 13200) in the fin-plate, but in laminar mode (can be kept up to Re = 20000) [1] in the coil because the flow is affected by secondary flow cause by centrifugal forces. This study allows the choice of the heat exchanger wherein with first experiment has been made and compared.
机译:在太阳能热能存储系统中,操作模式涉及充电和放电本文仅侧重于导致吸热反应的充电,因此需要高效的热交换器来转移热量,以便在此研究两种不同的热交换器两种不同的热交换器纸。基于有限元方法,使用软件COMSOL 4.3a建模和解决嵌入氯化镁床中的螺纹和螺旋线圈​​热交换器。对参数感性进行啮合分析,并且在热化学储热系统的充电模式期间,结果显示了在材料床中的13°C(螺旋线圈)和19°C(板翅)的温度变化。发热流体中的压力分布和材料床中的温度分布,并计算的总传热系数为173W / m〜2·k(螺旋线圈)和236W / m〜2·k(板 - 在通过系统的总热量(Q)的基础上获得翅片。流体流动在翅片板中处于湍流状态(RE = 13200),但在线圈中的层压模式(可以保持RE = 20000)[1],因为流量受离心力的二次流动原因的影响。该研究允许选择具有第一实验的热交换器,并进行比较。

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