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Performance assessment and optimization of a combined heat and power system based on compressed air energy storage system and humid air turbine cycle

机译:基于压缩空气储能系统和湿式空气涡轮机循环的热电联产系统的性能评估和优化

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摘要

Renewable energy based power sources have grown rapidly in the past few years owing to the dual constraint of climate change and pollution control. Compressed air energy storage (CAB), as a large-scale energy storage system (ESS) technology, has huge potential to manage the intermittent renewable energy based power sources effectively. However, the compression heat generated during charge and waste heat carried in turbine exhaust during discharge are not fully recuperated in current stage. A combined heat and power (CHP) system consisting of a CAES system and a humid air turbine (HAT) system is proposed to utilize the both types of heat energy. The proposed system can boost the power output, enhance performance and improve efficiency through a simultaneous supply of power and heat. The thermodynamic analysis shows that the expansion train power can be improved about 26% compared with the conventional CAES system. The parametric analysis reveals that the exergy efficiency increases with the turbine inlet temperature (TIT) of high pressure turbine (HPT) and inlet pressure of low pressure turbine (LPT), but decreases with the TIT of LPT, L/G ratio and thy air inlet temperature of saturator. Meanwhile, the system optimization is carried out via particle swarm optimization (PSO) to determine the maximum power and exergy efficiency conditions. (C) 2015. Elsevier Ltd. All rights reserved.
机译:由于气候变化和污染控制的双重制约,基于可再生能源的电源在过去几年中发展迅速。压缩空气能量存储(CAB)作为一种大型能量存储系统(ESS)技术,具有有效管理间歇性可再生能源的巨大潜力。然而,在充电阶段产生的压缩热和在放电期间涡轮机排气中携带的废热在当前阶段没有完全恢复。提出了一种由CAES系统和湿式空气涡轮机(HAT)系统组成的热电联产(CHP)系统,以利用这两种类型的热能。拟议的系统可以通过同时供应电力和热量来提高功率输出,增强性能并提高效率。热力学分析表明,与传统的CAES系统相比,膨胀机功率可提高约26%。参数分析显示,火用效率随高压涡轮(HPT)的涡轮入口温度(TIT)和低压涡轮(LPT)的入口压力而增加,但随LPT,L / G比和空气的TIT一起降低。饱和器的入口温度。同时,通过粒子群优化(PSO)进行系统优化,以确定最大功率和火用效率条件。 (C)2015。ElsevierLtd.保留所有权利。

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