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Thermal and exergetic analysis of shell and eccentric-tube thermal energy storage

机译:壳体和偏心管热能储存的热和淬火分析

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The selection of artificial cylinder boundary is of vital importance in the simulation of multiple-tube thermal energy storage (TES). This paper is intended to design and compare the accuracy of the concentric and eccentric artificial cylinder boundary, which is used to simplify the geometry of multiple tubes thermal energy storage system in the numerical computation. The eccentric artificial cylinder boundary shows the higher accuracy due to fully considering the development of buoyancy-driven convection. Based on the single tube TES with eccentric artificial cylinder boundary, the effects of multiple phase change materials (PCMs) and gradient copper foam on the thermal behavior and exergetic efficiency were investigated. The field synergy principle was employed to illustrate the heat exchange process in TES. The results indicated that both the exergetic efficiency and heat transfer efficiency could be significantly improved by gradient copper foam. The layout of multiple PCMs with various melting points could remarkably reduce the complete melting time. However, the application of multiple PCMs had a little effect on the exergetic efficiency because of the large entropy generation. Besides, the results indicate that the lower inlet temperature of the heat transfer fluid (HTF) results in the higher exergetic efficiency. The outcomes of this paper help design and optimize multiple tube TES.
机译:人工圆柱边界的选择对于模拟多管热能储存(TES)至关重要。本文旨在设计和比较同心和偏心人工圆柱边界的准确性,该圆柱边界用于简化数值计算中多个管热能存储系统的几何形状。偏心人工圆柱边界显示出更高的准确性,因为充分考虑了浮力驱动的对流的发展。基于具有偏心人工圆柱边界的单管TES,研究了多相变化材料(PCM)和梯度铜泡沫对热行为和前进效率的影响。现场协同原理用于说明TES中的热交换过程。结果表明,通过梯度铜泡沫可以显着提高淬火效率和传热效率。具有各种熔点的多个PCM的布局可以显着降低完全熔化的时间。然而,由于大的熵生成,多种PCM的应用对淬火效率有点影响。此外,结果表明,传热流体(HTF)的下部入口温度导致较高的前进效率。本文的结果有助于设计和优化多管TES。

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