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HEAT TRANSFER ENHANCEMENT OF SENSIBLE ENERGY STORAGE FOR LOW TEMPERATURE APPLICATION

机译:低温应用中合理能量存储的传热增强

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A shell and tube heat storage (1 MJ) has been designed computationally to enhance the heat transfer rate from heat transfer fluid (HTF) to the storage media. Concrete and water are considered as the sensible storage material and HTF, respectively. The system can be used to store the solar energy in the day time, which will be available in the absence of sunlight. Finite element based software, named COMSOL Multiphysics, is used for the study. The parameters analyzed, are tube outside diameter, radial distances between the tubes, number of tubes and inlet temperature of HTF. After a simulation time of 3000s, the increase of tube diameter from 1.03 to 1.71 cm is found to increase the average storage bed temperature by 6.3%. For the radial distances between the tubes to be 6 cm, the stored energy is maximum. The stored energies for 5 and 4 cm are 2.4 and 12.4% less than 6 cm, respectively, after duration of 6000s. The average bed temperature reaches to the steady state condition at 5147s with 19 tubes, whereas, with 25 tubes it takes 30.2% less time. Finally, the shell and tube heat storage has been optimized for higher heat transfer rate.
机译:通过管壳式蓄热器(1 MJ)进行了计算设计,以提高从传热流体(HTF)到存储介质的传热速率。混凝土和水分别被视为明智的存储材料和HTF。该系统可用于在白天存储太阳能,在没有阳光的情况下可用。本研究使用基于有限元的软件COMSOL Multiphysics。分析的参数是管的外径,管之间的径向距离,管的数量和HTF的入口温度。经过3000s的模拟时间后,发现管直径从1.03厘米增加到1.71厘米,使平均存储床温度增加了6.3%。为了使管之间的径向距离为6 cm,存储的能量最大。在6000s的持续时间之后,5 cm和4 cm的存储能量分别比6 cm少2.4%和12.4%。 19根管的平均床温在5147s时达到稳态,而25根管的平均床温则节省了30.2%的时间。最后,对壳管式储热器进行了优化,以提高传热率。

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