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Preliminary Design and Performance Assessment of an Underwater Compressed Air Energy Storage System for Wind Power Balancing

机译:风电平衡水下压缩空气储能系统的初步设计与性能评估

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摘要

A key approach to large renewable power management is based on implementing storage technologies, including batteries, power-to-gas, and compressed air energy storage (CAES). This work presents the preliminary design and performance assessment of an innovative type of CAES, based on underwater compressed air energy storage (UW-CAES) volumes and intended for installation in the proximity of deep-water seas or lakes. The UW-CAES works with constant hydrostatic pressure storage and variable volumes. The proposed system is adiabatic, not using any fuel to increase the air temperature before expansion; a sufficient turbine inlet temperature (TIT) is instead obtained through a thermal energy storage (TES) system which recovers the compression heat. The system includes (ⅰ) a set of turbomachines (modular multistage compressor, with partial inter-cooling; expansion turbine); (ⅱ) a TES system with different temperature levels designed to recover a large fraction of the compression heat, allowing the subsequent heating of air prior to the expansion phase; (ⅲ) an underwater modular compressed air storage, conceived as a network of rigid but open tanks lying on the seabed and allowing a variable-volume and constant pressure operation. The compressor operates at variable loads, following an oscillating renewable power input, according to strategies oriented to improve the overall system dispatchability; the expander can be designed to work either at full load, thanks to the stability of the air flowrate and of the TIT guaranteed by the thermal storage, or at variable load. This paper first discusses in detail the sizing and off-design characterization of the overall system; then it simulates a case study where the UW-CAES is coupled to a wind farm for peak shaving and dispatchability enhancement, evaluating the impact of a realistic power input on performances and plant flexibility. Although the assessment shall be considered preliminary, it is shown that round-trip efficiency (RTE) in the range of 75-80% can be obtained depending on the compressor section configuration, making the UW-CAES a promising technology compared to electrochemical and pumped-hydrostorage systems. The technology is also applied to perform peak-shaving of the electricity production from an off-shore wind farm; annual simulations, based on realistic wind data and considering part-load operation, result in global RTE around 75% with a 10-15% reduction in the average unplanned energy injection in the electric grid. The investigated case study provides an example of the potential of this system in providing power output peak shaving when coupled with an intermittent and nonpredictable energy source.
机译:大型可再生电力管理的一个关键方法是基于实施存储技术,包括电池,电力和压缩空气能量存储(CAES)。这项工作提出了一种基于水下压缩空气储能(UW-CAES)卷的创新类型的CAE的初步设计和性能评估,并用于安装在深海海洋或湖泊附近。 UW-CAES适用于恒定的静水蓄压和可变体积。所提出的系统是绝热的,不使用任何燃料增加膨胀前的空气温度;相反,通过恢复压缩热量的热能存储(TES)系统获得足够的涡轮机入口温度(山雀)。该系统包括(Ⅰ)一套涡轮机(模块化多级压缩机,部分间冷却;膨胀涡轮机); (Ⅱ)具有不同温度水平的TES系统,旨在回收大部分的压缩热量,允许在膨胀相之前随后加热空气; (Ⅲ)水下模块化压缩空气储存,被认为是刚性但铺设在海底上的开放式罐的网络,并允许变量和恒定的压力操作。根据振荡的可再生电源输入,压缩机在可变负载下运行,根据导向的策略,以提高整体系统调度性;由于空气流量的稳定性和热存储器保证的山雀,或可变载荷,可以设计膨胀机以满载的全部负载工作。本文首先详细讨论了整个系统的尺寸和非设计表征;然后,模拟UW-CAES耦合到风电场的案例研究,用于峰值剃须和调度性增强,评估现实功率输入对性能和植物灵活性的影响。虽然评估应被视为初步,但表明,可以根据压缩机部分配置获得75-80%的往返效率(RTE),使UW-CAES成为电化学和泵送相比的有希望的技术。 -HYDROTERAGE系统。该技术还应用于从岸上风电场进行电力生产的峰值;基于现实风数据和考虑部分负载运行的年度模拟,导致全局RTE约为75%,电网中平均无计划的能量注入10-15%。调查的案例研究提供了在与间歇和不可预测的能源相结合时提供功率输出峰值剃料在提供功率输出峰值剃刮的情况下的示例。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2020年第9期|091001.1-091001.10|共10页
  • 作者单位

    Energy Department Politecnico di Milano via Lambruschini 4A Milano 20156 Italy;

    Energy Department Politecnico di Milano via Lambruschini 4A Milano 20156 Italy;

    Energy Department Politecnico di Milano via Lambruschini 4A Milano 20156 Italy;

    Energy Department Politecnico di Milano via Lambruschini 4A Milano 20156 Italy;

    Energy Department Politecnico di Milano via Lambruschini 4A Milano 20156 Italy;

    Energy Department Politecnico di Milano via Lambruschini 4A Milano 20156 Italy;

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