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Comparison of compressed air energy storage process in aquifers and caverns based on the Huntorf CAES plant

机译:基于Huntorf CAES装置的含水层和洞穴中压缩空气能量存储过程的比较

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摘要

CAESA (compressed air energy storage in aquifers) attracts more and more attention as the increase need of large scale energy storage. The compassion of CAESA and CAESC (compressed air energy storage in caverns) can help on understanding the performance of CAESA, since there is no on running CAESA project. In order to investigate the detail thermodynamic process, integrated wellbore-reservoir (cavern or aquifer) simulations of CAES (compressed air energy storage) are carried out based on parameters of the Huntorf CAES plant. Reasonable matches between monitored data and simulated results are obtained for the Huntorf cavern systems in the wellbore and cavern regions. In this study, the hydrodynamic and thermodynamic behaviors of CAES in cavern and aquifer systems are investigated, such as pressure and temperature distribution and variation in both the wellbore and cavern regions of the CAES systems. Performances of CAESA are investigated with numerical models and compared with the performances of CAESC. The comparisons of CAESC and CAESA indicate that the pressure variation in CAESA shows a wider variation range than that in CAESC, while the temperature shows a smooth variation due to the large grain specific heat of the grains in the porous media. The simulation results confirm that the CAES can be achieved in aquifers, and further that the performance of energy storage in aquifers can be similar to or better than CAESC, if the aquifers have appropriate reservoir properties, which means the gas bubble can be well developed in an aquifer with such properties and the aquifer should have closed or semi-closed boundaries. The impacts of gas-bubble volume, formation permeability, and aquifer boundary permeability on storage efficiency are investigated and the simulation results indicate that the increase of gas bubble volume and permeability can improve the efficiency, but the effect is not significant. The gas bubble boundary permeability has a small effect on the energy efficiency of the sustainable daily cycle but can significantly affect total sustainable cycle times. The analysis of thermodynamic behaviors in CAESA suggests that more attention should be paid to the heat storage, reservoir properties and two-phase flow processes. (C) 2016 Elsevier Ltd. All rights reserved.
机译:随着对大型能量存储需求的增加,CAESA(含水层中的压缩空气能量存储)吸引了越来越多的关注。 CAESA和CAESC的同情心(洞穴中的压缩空气能量存储)可以帮助理解CAESA的性能,因为没有运行中的CAESA项目。为了研究详细的热力学过程,基于Huntorf CAES工厂的参数对CAES(压缩空气储能)进行了井筒-储层(洞穴或含水层)的集成模拟。对于井筒和洞穴区域中的Huntorf洞穴系统,可以得到监测数据与模拟结果之间的合理匹配。在这项研究中,研究了CAES在洞穴和含水层系统中的流体动力学和热力学行为,例如CAES系统的井筒和洞穴区域中的压力和温度分布以及变化。用数值模型研究了CAESA的性能,并与CAESC的性能进行了比较。 CAESC和CAESA的比较表明,CAESA中的压​​力变化显示出比CAESC中更大的变化范围,而温度显示出平滑的变化,这是由于多孔介质中颗粒的大颗粒比热所致。仿真结果证实,如果含水层具有适当的储层性质,则可以在含水层中实现CAES,并且进一步证明含水层中的能量存储性能可以与CAESC相似或更好,这意味着气泡可以在含水层中很好地发育。具有这种性质的含水层,含水层应具有封闭或半封闭边界。研究了气泡体积,地层渗透率和含水层边界渗透率对储层效率的影响,模拟结果表明,增加气泡体积和渗透率可以提高储层效率,但效果不显着。气泡边界渗透率对可持续日循环的能量效率影响很小,但会显着影响总的可持续循环时间。对CAESA中热力学行为的分析表明,应更加注意储热,储层性质和两相流过程。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Applied Energy》 |2016年第1期|342-356|共15页
  • 作者单位

    Tongji Univ, Sch Mech Engn, Shanghai 201804, Peoples R China;

    Lawrence Berkeley Natl Lab, Earth & Environm Sci Area, Berkeley, CA 94720 USA;

    Tongji Univ, Sch Mech Engn, Shanghai 201804, Peoples R China|Lawrence Berkeley Natl Lab, Earth & Environm Sci Area, Berkeley, CA 94720 USA;

    Lawrence Berkeley Natl Lab, Earth & Environm Sci Area, Berkeley, CA 94720 USA;

    China Inst Geoenvironm Monitoring, Beijing 100081, Peoples R China;

    Beijing Normal Univ, Coll Water Sci, Beijing 100875, Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Compressed air energy storage; CAES; Aquifer; Thermodynamic process; Cavern;

    机译:压缩空气储能CAES含水层热力学过程洞穴;

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