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Potential analysis of pumped heat electricity storages regarding thermodynamic efficiency

机译:热力学效率泵浦热电储存的潜在分析

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The rising share of renewable energy sources in power generation leads to the need of energy storage capacities. In this context, also some interest in thermal energy storages, especially in a concept called pumped heat electricity storage (PHES), arises. One possible design of such a PHES system consists of a compression heat pump (HP), a thermal storage and an organic Rankine cycle (ORC). The present work analyses the general thermodynamic potential and limits of such a system by means of realistic simple Rankine cycles. The potential analysis starts with the optimal case of combining two reversible Rankine cycles with reversible heat transfer. Afterwards Rankine cycles are transferred to more realistic cycles by taking temperature differences between heat sink and source and the cycles, respectively into account (irreversible heat transfer). For this case the relation between power output of the discharging cycle and the efficiency of the entire process is analysed. In order to ensure optimal conditions, the considered working fluids are always optimal hypothetical fluids, which are defined by their critical point and some further parameters. In an inverse engineering approach, these parameters are numerically optimized, with respect to cycle efficiency and meeting several boundary conditions. It is shown that the total or roundtrip efficiencies, which are defined by the quotient of the rejected work and the stored work, are between 56% and 37% for a power output of 80% of the maximal value and decrease with increasing storage temperatures, in contrast to a Carnot cycle analysis. A further expansion of the investigation considers the influence of the isentropic efficiencies of the ORC expander and the HP compressor on the process efficiency. Here, a stronger sensitivity of the isentropic efficiency of the ORC expander on the roundtrip efficiency was found. (C) 2018 Elsevier Ltd. All rights reserved.
机译:可再生能源在发电中的上升份额导致能量储存能力的需求。在这种情况下,出现了对热能存储器的一些兴趣,特别是在称为泵送热电存储(PHES)的概念中。这种PHES系统的一种可能设计包括压缩热泵(HP),热存储和有机朗肯循环(ORC)。本工作通过现实简单的朗肯循环分析了这种系统的一般热力学潜力和限制。潜在的分析从结合两个可逆朗肯循环与可逆传热相结合的最佳情况。然后通过分别考虑散热器和源极和循环之间的温差(不可逆传热)来转移到更现实循环的ranciNe循环。为这种情况,分析了放电周期的功率输出与整个过程的效率之间的关系。为了确保最佳条件,所考虑的工作流体始终是最佳假想流体,其由其临界点和一些进一步的参数定义。在逆向工程方法中,关于循环效率并满足若干边界条件,这些参数是数值优化的。结果表明,通过被拒绝的工作和存储的工作的商定定义的总或往返效率在最大值的80%的功率输出和随着存储温度的增加而降低的功率输出的56%和37%之间,与Carnot循环分析相反。调查的进一步扩展考虑了兽人膨胀机和HP压缩机的常熵效率对过程效率的影响。在这里,发现了兽人膨胀机上的熵效率的更强敏感性。 (c)2018年elestvier有限公司保留所有权利。

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