首页> 外文期刊>Renewable Power Generation, IET >An approach to reduce the flow requirement for a liquid piston near-isothermal air compressor/expander in a compressed air energy storage system
【24h】

An approach to reduce the flow requirement for a liquid piston near-isothermal air compressor/expander in a compressed air energy storage system

机译:减少压缩空气储能系统中液体活塞近等温空气压缩机/膨胀机的流量需求的方法

获取原文
获取原文并翻译 | 示例
           

摘要

A compressed air energy storage system that uses a high pressure, isothermal air compressor/expander (C/E) has no carbon emission and is more efficient than a conventional system that uses fossil fuels. To be successful, the compressor/expander must be efficient and has high power density. However, there is a trade-off between efficiency and power density due to heat transfer. The authors' previous work has shown that by optimising the compression/expansion trajectories in a liquid piston C/E, the power density can be improved by many times without sacrificing efficiency. Yet, to achieve the optimised trajectory, this requires a large liquid piston pump/motor that often operates at low displacement, low efficiency regime. This study proposes that by combining the liquid piston with a solid piston actuated via a hydraulic intensifier, the pump/motor size can be reduced significantly. A case study shows that with an optimal intensifier ratio, the pump/motor size is reduced by 85%, the ratio between maximum and minimum displacements is reduced by 7 times, and the mean efficiency is increased by 2.4 times. A full cycle dynamic simulation shows that the intensifier decreases, for the same pump/motor size, the total cycle time for over 50%, thus doubling the power density of the compressor/expander.
机译:使用高压,等温空气压缩机/膨胀机(C / E)的压缩空气能量存储系统没有碳排放,并且比使用化石燃料的常规系统更有效。为了成功,压缩机/膨胀机必须高效并且具有高功率密度。然而,由于传热,在效率和功率密度之间需要权衡。作者的先前工作表明,通过优化液体活塞C / E中的压缩/膨胀轨迹,可以在不牺牲效率的情况下将功率密度提高很多倍。然而,为了获得最佳轨迹,这需要大型液体活塞泵/马达,该液体/活塞泵/马达通常在低排量,低效率的状态下运行。这项研究提出,通过将液体活塞与通过液压增压器驱动的固体活塞结合起来,可以显着减小泵/电动机的尺寸。案例研究表明,在最佳增压比的情况下,泵/电机尺寸减小了85%,最大排量和最小排量之比减小了7倍,平均效率提高了2.4倍。全周期动态仿真表明,对于相同的泵/电动机尺寸,增压器的总循环时间减少了50%以上,从而使压缩机/膨胀机的功率密度增加了一倍。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号