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Operating Range for a Combined Building-Scale Liquid Air Energy Storage and Expansion System: Energy and Exergy Analysis

机译:合并建筑尺度液体空气储能和扩展系统的操作范围:能源和漏洞分析

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摘要

This paper presents the results of an ideal theoretical energy and exergy analysis for a combined, building scale Liquid Air Energy Storage (LAES) and expansion turbine system. This work identifies the upper bounds of energy and exergy efficiency for the combined LAES-expansion system which has not been investigated. The system uses the simple Linde-Hampson and pre-cooled Linde-Hampson cycles for the liquefaction subsystem and direct expansion method, with and without heating above ambient temperature, for the energy production subsystem. In addition, the paper highlights the effectiveness of precooling air for liquefaction and heating air beyond ambient temperature for energy production. Finally, analysis of the system components is presented with an aim toward identifying components that have the greatest impact on energy and exergy efficiencies in an ideal environment. This work highlights the engineering trade-space and serves as a prescription for determining the merit or measures of effectiveness for an engineered LAES system in terms of energy and exergy. The analytical approach presented in this paper may be applied to other LAES configurations in order to identify optimal operating points in terms of energy and exergy efficiencies.
机译:本文介绍了一种理想的理论能源和膨胀型液空气储能(Laes)和膨胀涡轮机系统的理论能源和漏洞分析的结果。这项工作识别未对其组合的Laes-膨胀系统的能量和高级效率的上限。该系统采用简单的林德 - 汉普控股和预冷的林德 - 汉普控股循环,用于液化子系统和直接扩展方法,具有和不加热高于环境温度,适用于能量生产子系统。此外,本文突出了预冷空气液化和加热空气超越环境温度的有效性。最后,提出了对系统组件的分析,目的是识别对理想环境中能源和漏洞产生最大影响的组件。这项工作突出了工程贸易空间,并作为在能量和暴风方面确定工程化Laes系统的效率或衡量标准的处方。本文呈现的分析方法可以应用于其他Laes配置,以便在能量和漏洞的效率方面识别最佳操作点。

著录项

  • 期刊名称 Entropy
  • 作者单位
  • 年(卷),期 2018(20),10
  • 年度 2018
  • 页码 770
  • 总页数 17
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:液体空气储能;能量分析;漏洞分析;低温系统;

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