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Numerical Investigations on Charging/Discharging Performance of a Novel Truncated Cone Thermal Energy Storage Tank on a Concentrated Solar Power System

机译:集中太阳能电力系统新型截断锥热能储罐充电/放电性能的数值研究

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Developing a concentrated solar power (CSP) technology is one of the most effective methods to solve energy shortage and environmental pollution all over the world. Thermal energy storage (TES) system coupling with phase change materials (PCM) is one of the most significant methods to mitigate the intermittence of solar energy. In this paper, firstly, a 2D physical and mathematical model of a novel truncated cone shell-and-tube TES tank has been proposed based on enthalpy method. Secondly, the performance during the charging/discharging process of the truncated cone tank has been compared with the traditional cylindrical tank. Finally, the effects of inlet conditions of heat transfer fluid (HTF), and thickness of tube on the charging/discharging process, stored/released energy capacity; energy storage/release rate and heat storage efficiency have been investigated. The results show that the performance of truncated cone tank is better, and the charging/discharging time reduces 32.08% and 21.59%, respectively, compared with the cylindrical tank. The effect of wall thickness on the truncated cone TES tank can be ignored. And the inlet temperature and velocity of HTF have the significant influence on the charging/discharging performance of TES tank. And the maximum heat storage efficiency of the truncated cone TES tank can reach 93%. However, some appropriate methods should be taken for improving the thermal energy utilization rate of HTF in the future. This research will provide insights and significant reference towards geometric design and operating conditions in TES system.
机译:开发集中的太阳能(CSP)技术是解决世界各地能源短缺和环境污染的最有效方法之一。热能存储(TES)系统耦合与相变材料(PCM)是减轻太阳能间歇性的最重要方法之一。本文提出了一种基于焓方法提出了一种新型截断锥形壳体罐的2D物理和数学模型。其次,与传统的圆柱罐进行了比较了截短的锥形罐的充电/放电过程中的性能。最后,热传递流体(HTF)的入口条件和管厚度对充电/放电过程,储存/释放的能量容量;已经研究了能量存储/释放速率和蓄热效率。结果表明,与圆柱形罐相比,截断锥形罐的性能较好,充电/放电时间分别降低了32.08%和21.59%。可以忽略壁厚在截头锥形罐上的效果。 HTF的入口温度和速度对TES罐的充电/放电性能具有显着影响。截短锥形罐的最大蓄热效率可达到93%。然而,应采取一些适当的方法来提高未来HTF的热能利用率。该研究将为TES系统的几何设计和操作条件提供见解和重要参考。

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