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Thermo-economic optimization of a combined cooling, heating and power system based on small-scale compressed air energy storage

机译:基于小型压缩空气储能的热电联产系统的热经济优化

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摘要

Energy storage systems are important for dealing with the fluctuation of renewable energies in course of their increasing penetration into the energy market. Small-scale compressed air energy storage (CAES) with artificial air vessels can improve the supply capacity of power system and the utilization of renewable energy by storing excess power during off-peak time and releasing it for on-peak power supply and becomes more promising for distributed energy systems. For diabatic CAES, heat usually cannot be efficiently utilized and the low inlet temperature of turbine in an adiabatic-CAES (A-CAES) usually leads to low discharge efficiency. To address these problems, in this paper, we propose a novel combined cooling, heating and power system (CCHP) based on small-scale CAES. The sensitivity analysis performed shows the effectiveness of heat exchanger, and the air temperature and pressure at the turbine inlet have great influence on the system's thermodynamic performance. Then, the trade-off between the thermodynamic and economic performances is investigated by an evolutionary multi-objective algorithm. The total investment cost per output power of the Pareto solutions does not increase significantly when increasing exergy efficiency below 51%, indicating the solutions with an exergy efficiency of around 51% are promising for practical designs. (C) 2016 Elsevier Ltd. All rights reserved.
机译:储能系统对于应对可再生能源在其日益渗透到能源市场的过程中的波动非常重要。通过在非高峰时间存储多余的电力并将其释放用于高峰供电,带有人工航空器的小型压缩空气储能(CAES)可以提高电力系统的供电能力和可再生能源的利用,这变得更有希望用于分布式能源系统。对于非绝热CAES,通常无法有效利用热量,并且绝热CAES(A-CAES)中涡轮机的低进气温度通常会导致排气效率低。为了解决这些问题,在本文中,我们提出了一种基于小型CAES的新型制冷,供暖和电力系统组合。进行的灵敏度分析显示了热交换器的有效性,并且涡轮入口处的空气温度和压力对系统的热力学性能有很大影响。然后,通过进化多目标算法研究了热力学性能与经济性能之间的权衡。当将火用效率提高到51%以下时,帕累托解决方案的每输出功率的总投资成本不会显着增加,这表明火用效率约为51%的解决方案对于实际设计是有希望的。 (C)2016 Elsevier Ltd.保留所有权利。

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