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Isothermal piston gas compression for compressed air energy storage

机译:用于压缩空气储能的等温活塞气体压缩

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摘要

Currently, Compressed Air Energy Storage systems mainly use adiabatic compression. Compared with isothermal compression, approximately twice the electricity is transformed into heat. Twice the heat passed into heat exchange mediums leads to twice the heat transfer losses. Enhancement of the heat transfer between air and environment to achieve isothermal compression is an effective approach to improve the turnaround efficiency of CAES systems. An isothermal piston structure is proposed to do isothermal compression. One end of the isothermal piston is connected to a traditional piston, and the other end dips into a liquid medium in the bottom of a cylinder. This forms a gas-solid-liquid three-layer heat transfer structure. A porous medium is used to enhance the heat transfer from the air to the liquid. As the heat capacity of the liquid is much greater than that of the air, the temperature of the liquid remains unchanged as well as the compressed air. A new method is proposed to look at the thermodynamics of the compressor with two dimensionless parameters Ka and Xu. Ka describes the extent of the compressor approaching isothermal. When Ka is over 80, the temperature of the air is reduced by 80% compared with adiabatic condition. In the case of using an aluminum porous medium, the compression efficiency increases by 11% at the compression ratio of 7 and the speed of 1200 r/min.
机译:目前,压缩空气储能系统主要使用绝热压缩。与等温压缩相比,电力大约两倍被转化为热量。进入热交换介质的热量的两倍导致传热损耗的两倍。增强空气与环境之间的传热,实现等温压缩是提高CAES系统的周转效率的有效方法。提出了一种等温活塞结构以进行等温压缩。等温活塞的一端连接到传统的活塞,另一端浸入圆柱底部的液体介质中。这形成了气体固液三层传热结构。使用多孔介质来增强从空气中的热传递到液体。随着液体的热量远大于空气的热量,液体的温度保持不变以及压缩空气。提出了一种新方法来查看压缩机的热力学,具有两个无量纲参数Ka和Xu。 KA描述了压缩机接近等温的程度。当KA超过80时,与绝热条件相比,空气的温度降低了80%。在使用铝多孔介质的情况下,压缩效率以7的压缩比和1200 r / min的速度增加11%。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2020年第7期|119779.1-119779.12|共12页
  • 作者单位

    School of Automation Science and Electrical Engineering Beihang University Beijing 100191 PR China Pneumatic and Thermodynamic energy storage and supply Beijing Key Laboratory Beijing 100191 PR China;

    School of Mechanical and Materials Engineering North China University of Technology Beijing 100144 PR China;

    School of Automation Science and Electrical Engineering Beihang University Beijing 100191 PR China Pneumatic and Thermodynamic energy storage and supply Beijing Key Laboratory Beijing 100191 PR China;

    School of Automation Science and Electrical Engineering Beihang University Beijing 100191 PR China Pneumatic and Thermodynamic energy storage and supply Beijing Key Laboratory Beijing 100191 PR China;

    School of Physics & Electronics Henan University Kaifeng 475004 PR China;

    School of Automation Science and Electrical Engineering Beihang University Beijing 100191 PR China Pneumatic and Thermodynamic energy storage and supply Beijing Key Laboratory Beijing 100191 PR 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

    Isothermal compression; Porous medium; Compression efficiency; Energy storage;

    机译:等温压缩;多孔介质;压缩效率;储能;

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