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CAES by design: A user-centered approach to designing Compressed Air Energy Storage (CAES) systems for future electrical grid: A case study for Ontario

机译:CAES通过设计:以用户为中心的方法来设计未来电网的压缩空气储能(CAES)系统:安大略省的案例研究

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摘要

Compressed Air Energy Storage (CAES) systems, if designed right, can provide a range of high-value grid services that are required for stable operation of the electrical grid. In this paper, a new design approach for customized CAES based on user-centered design (UCD) methodology is developed. To this end, a study of the electrical grid infrastructure and challenges, with a focus on Ontario (Canada) is presented. Afterward, a system approach methodology called CAES-by-Design is developed that incorporates the impact of grid profiles. Hourly load profiles of the Ontario grid are analyzed. Using a thermodynamic model, it is shown how the performance requirements of an adiabatic CAES (A-CAES) system, in terms of capacity, charge and discharge rates and duration are affected by the grid demand and supply profile. For example, it is observed that a compressor capacity of 13% of maximum excess energy and a turbine capacity of 10% of maximum required energy would be sufficient to capture more than 50% of the charging and discharging opportunities. Furthermore, the impact of charging and discharging cycle dynamics on the sizing and operating characteristics of thermal energy storage (TES) system is discussed. Results of this analysis suggest that a comprehensive assessment tool can be developed based on the presented methodology.
机译:如果设计正确,压缩空气能量存储(CAES)系统可以提供一系列稳定电网运行所需的高价值电网服务。本文提出了一种基于用户中心设计(UCD)方法的定制CAES设计新方法。为此,提出了对电网基础设施和挑战的研究,重点是安大略省(加拿大)。之后,开发了一种称为CAES-by-Design的系统方法,该方法结合了网格轮廓的影响。分析了安大略电网的每小时负荷曲线。使用热力学模型,显示了绝热CAES(A-CAES)系统在容量,充放电速率和持续时间方面的性能要求如何受到电网需求和供应状况的影响。例如,观察到,最大过剩能量的13%的压缩机容量和最大所需能量的10%的涡轮机容量足以捕获超过50%的充电和放电机会。此外,还讨论了充电和放电循环动力学对热能存储(TES)系统的尺寸和运行特性的影响。分析的结果表明,可以根据提出的方法开发综合评估工具。

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