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Simulation on direct contact heat transfer in gas-molten salt bubble column for high temperature solar thermal storage

机译:气态盐泡塔中高温太阳能蓄热器直接接触传热的模拟

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The charging and discharging of molten salt thermal storage is of great importance to the operation and maintenance of the solar power plant. The molten salt bubble column is proposed for solar thermal storage, which is regarded as direct contact heat exchanger. The gas from the solar field is directly injected into the molten salt bubble column. High heat transfer rates can be achieved between the gas and the molten salt due to the direct contact. The hydrodynamics and heat transfer characteristics of the gas molten salt bubble column are numerically analyzed based on the two fluid model, which incorporating the interfacial area transport equation. Simulation results are compared with experimental data from previous literature and our lab. The predictions of lateral profiles of the axial liquid velocity, overall gas holdup and temperature rising rate are in well agreement with the experimental data. Therefore, the models can be used to simulate the behaviors of gas-molten salt bubble column. The effect of superficial gas velocity, static liquid height, operation pressure and inlet gas temperature are discussed. Numeric results show that the volumetric heat transfer coefficient and rising rate of average molten salt temperature increase by increasing superficial gas velocity or operation pressure, and decrease by increasing the static liquid height. The molten salt temperature decreases along the height gradually and the distribution of molten salt temperature in the bubble column is almost uniform during the process.
机译:熔融盐储热器的充放电对太阳能电站的运行和维护非常重要。提出将熔融盐气泡塔用于太阳能蓄热,其被认为是直接接触式热交换器。来自太阳场的气体直接注入熔融盐气泡塔中。由于直接接触,可以在气体和熔融盐之间实现高传热率。基于两种流体模型,数值计算了气体熔盐气泡塔的流体动力学和传热特性,并结合了界面面积传输方程。仿真结果与以前文献和我们实验室的实验数据进行了比较。轴向液体速度,总气体滞留量和升温速率的横向轮廓的预测与实验数据完全吻合。因此,该模型可用于模拟气熔盐泡塔的行为。讨论了表观气体速度,静态液体高度,操作压力和进气温度的影响。数值结果表明,通过增加表观气体速度或操作压力,体积传热系数和平均熔融盐温度的升高速率会增加,而通过增加静态液体高度会降低。在此过程中,熔融盐温度沿高度逐渐降低,并且气泡塔中熔融盐温度的分布几乎均匀。

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