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Thermal analysis of near-isothermal compressed gas energy storage system

机译:等温压缩气体储能系统的热分析

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摘要

Due to the increasing generation capacity of intermittent renewable electricity sources and an electrical grid ill-equipped to handle the mismatch between electricity generation and use, the need for advanced energy storage technologies will continue to grow. Currently, pumped-storage hydroelectricity and compressed air energy storage are used for grid-scale energy storage, and batteries are used at smaller scales. However, prospects for expansion of these technologies suffer from geographic limitations (pumped storage hydroelectricity and compressed air energy storage), low roundtrip efficiency (compressed air energy storage), and high cost (batteries). Furthermore, pumped-storage hydroelectricity and compressed air energy storage are challenging to scale-down, while batteries are challenging to scale-up. In 2015, a novel compressed gas energy storage prototype system was developed at Oak Ridge National Laboratory. In this paper, a near-isothermal modification to the system is proposed. In common with compressed air energy storage, the novel storage technology described in this paper is based on air compression/expansion. However, several novel features lead to near-isothermal processes, higher efficiency, greater system scalability, and the ability to site a system anywhere. The enabling features are utilization of hydraulic machines for expansion/compression, above-ground pressure vessels as the storage medium, spray cooling/heating, and waste-heat utilization. The base configuration of the novel storage system was introduced in a previous paper. This paper describes the results obtained from a transient, analytical, physics-based thermodynamic system model used for the system design and evaluation of three design configurations (including base configuration). The system model captures real gas effects and all loss mechanisms. The model demonstrates an energy storage roundtrip efficiency of 82% and energy density of 3.59 MJ/m(3). Experimental evaluation of system performance and detailed cost analysis will be presented in future publications. (C) 2016 Elsevier Ltd. All rights reserved.
机译:由于间歇性可再生电源的发电能力不断提高,并且电网设备不足以应对发电和使用之间的不匹配,对先进储能技术的需求将继续增长。目前,抽水蓄能和压缩空气储能被用于电网规模的储能,而电池则被用于较小的规模。但是,这些技术的扩展前景受到地理限制(抽水蓄能水电和压缩空气储能),往返效率低(压缩空气储能)和成本高(电池)的困扰。此外,抽水蓄能水力发电和压缩空气储能在缩小规模方面具有挑战性,而电池在扩大规模方面具有挑战性。 2015年,橡树岭国家实验室开发了一种新型的压缩气体储能原型系统。在本文中,提出了对该系统的近等温改进。与压缩空气能量存储相同,本文所述的新型存储技术基于空气压缩/膨胀。但是,一些新颖的功能导致近乎等温的过程,更高的效率,更大的系统可伸缩性以及将系统放置在任何地方的能力。支持的功能包括:利用液压机进行膨胀/压缩,将地上压力容器作为存储介质,喷雾冷却/加热以及余热利用。上一篇论文介绍了新型存储系统的基本配置。本文介绍了从瞬态,基于物理的,基于物理的热力学系统模型获得的结果,该模型用于系统设计和三种设计配置(包括基础配置)的评估。系统模型捕获实际的气体效应和所有损失机制。该模型演示了82%的能量存储往返效率和3.59 MJ / m(3)的能量密度。系统性能的实验评估和详细的成本分析将在以后的出版物中介绍。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Applied Energy》 |2016年第1期|948-960|共13页
  • 作者单位

    Georgia Inst Technol, George W Woodruff Sch Mech Engn, 801 Ferst Dr, Atlanta, GA 30332 USA;

    Oak Ridge Natl Lab, Energy & Transportat Sci Div, 1 Bethel Valley Rd, Oak Ridge, TN 37831 USA;

    Oak Ridge Natl Lab, Energy & Transportat Sci Div, 1 Bethel Valley Rd, Oak Ridge, TN 37831 USA;

    Oak Ridge Natl Lab, Energy & Transportat Sci Div, 1 Bethel Valley Rd, Oak Ridge, TN 37831 USA;

    Oak Ridge Natl Lab, Energy & Transportat Sci Div, 1 Bethel Valley Rd, Oak Ridge, TN 37831 USA;

    Oak Ridge Natl Lab, Energy & Transportat Sci Div, 1 Bethel Valley Rd, Oak Ridge, TN 37831 USA;

    Georgia Inst Technol, George W Woodruff Sch Mech Engn, 801 Ferst Dr, Atlanta, GA 30332 USA|Oak Ridge Natl Lab, Energy & Transportat Sci Div, 1 Bethel Valley Rd, Oak Ridge, TN 37831 USA;

    Oak Ridge Natl Lab, Energy & Transportat Sci Div, 1 Bethel Valley Rd, Oak Ridge, TN 37831 USA;

  • 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

    Energy storage; Compressed air; Micro pumped-hydro storage; Near-isothermal expansion/compression; Waste-heat utilization; Stirling cycle;

    机译:能量存储;压缩空气;微抽水蓄能;近等温膨胀/压缩;废热利用;斯特林循环;

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