发电技术

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基于标准热阻法的压缩空气储能系统整体建模及能-㶲分析#br#

胡泽灵1,郝俊红1*,巨陈治1,马腾宇1,窦真兰2,李双江3   

  1. 1. 华北电力大学能源动力与机械工程学院,北京市 昌平区 102206;2. 国网上海市电力公司,上海市 浦东新区 200122;3. 中国电建集团河北省电力勘测设计研究院有限公司,河北省 石家庄市 050000)
  • 基金资助:
    国家自然科学基金项目(52176068)

Comprehensive Modeling and Energy-Exergy Analysis of Compressed Air Energy Storage Systems Based on Standard Thermal Resistance Method#br#

HU Zeling1, HAO Junhong1*, JU Chenzhi1, MA Tengyu1, DOU Zhenlan2, LI Shuangjiang3   

  1. 1. School of Energy, Power and Mechanical Engineering, North China Electric Power University, Changping District, Beijing
    102206, China; 2. State Grid Shanghai Electric Power Company, Pudong New Area, Shanghai 200122, China; 3. Power China
    Hebei Electric Power Engineering Co. , Ltd. , Shijiazhuang 050000, Hebei Province, China
  • Supported by:
    Project Supported by National Natural Science Foundation of China(52176068)

摘要: 【目的】为了有效提升压缩空气储能系统的储能特性和系统效率,对各部件的性能及其耦合特性进行了建模分析。【方法】针对压缩空气储能系统,应用标准热阻方法考虑换热部件的传递特性,结合储气装置与做功部件模型,构建了传热、储气、做功耦合的完整热力学模型及能量和㶲分析模型,评价了压缩和膨胀过程中储(释)能质量流量比对系统性能的影响。【结果】随着储(释)能质量流量比的增加,压缩机的总能耗是先降低后升高,膨胀机的输出功是先上升后降低,当储(释)能的质量比分别为1.2和1.3时,系统效率达到最高,为53.65%;另外系统中首级压缩和膨胀机的㶲损最大,油-气换热器和压缩机的㶲损占系统总㶲损的69%;最后揭示了储气库最高储气压力与体积之间的关系对系统储能效率及储能密度的影响规律。【结论】所建模型和研究结果对CAES运行策略具有一定的指导意义。

关键词: 压缩空气储能, 换热器, 热阻, ?损, 质量流量, 系统效率, 储气装置

Abstract: [Objectives] In order to effectively improve the energy storage characteristics and system efficiency of compressed air energy storage (CAES) systems, the performance of each component and their coupling characteristics are modeled and analyzed. [Methods] In this study, for compressed air energy storage systems, the standard thermal resistance method is applied to take into
account the transfer characteristics of the heat exchange components. Combined with the gas storage device and the work component model, this study establishes a comprehensive thermodynamic model integrating heat transfer, gas storage, and work coupling, along with an energy and exergy analysis model. The influence of the mass flow rate of energy storage and release on the system performance during compression and expansion is evaluated.[Results] With the increase of the mass flow rate of energy storage and release, the total energy consumption of the compressor first decreases and then increases, and the output
work of the expander first increases and then decreases. When the mass rates of energy storage and release are 1.2 and 1.3,
respectively, the system efficiency reaches the maximum value of 53.65%. In addition, the exergy loss of the first-stage
compression and expander in the system is the largest, and the exergy loss of the oil-gas heat exchanger and the compressor
accounts for 69% of the total exergy loss of the system. Finally, the pattern of influence of the relationship between the
maximum gas storage pressure and volume of the gas storage reservoir on the system energy storage efficiency and energy
storage density is revealed. [Conclusions] The established model and the research findings provide important guidance for CAES
operational strategy.

Key words: compressed air energy storage, heat exchanger, thermal resistance, exergy loss, mass flow, system efficiency, gas storage device