Clarifying the Loss Mechanism of Advanced Adiabatic Compressed Air Energy Storage From the Aspects of Factors and Components

Energy Storage Pub Date : 2025-05-14 DOI:10.1002/est2.70195
Ruochen Ding, Zhengyang Tang, Yaran Liang, Wen Su, Xinxing Lin, Zhimei Zheng, Sumin Guan
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Abstract

Currently, advanced adiabatic compressed air energy storage (AA-CAES) has been widely used, but the quantitative study of its energy loss is still unresolved. Therefore, the ideal AA-CAES with a round-trip efficiency (RTE) of 100% is defined to quantify the energy losses in the AA-CAES from the aspects of factors and components, so as to clarify the loss mechanism of AA-CAES. First, eight energy loss factors affecting the performances of AA-CAES are identified. Then, based on component type, six components of AA-CAES are identified. After that, to obtain the system energy flow, the corresponding thermodynamic models are developed. Finally, based on the given operating conditions, the energy losses corresponding to each factor and component are obtained sequentially using univariate analysis, and parametric analysis is carried out. The results show that in terms of energy loss factors, the storage device has the greatest impact on system performance with a compression work increment dEcharge of 72.56 MWh and an RTE of 89.21%. In terms of components, the compressors and turbines have the greatest impact on system performance. Furthermore, there is a synergistic effect among the factors. The effect of different factors acting together is greater than the superposition of individual values.

从因素和组成方面阐明先进绝热压缩空气储能的损失机理
目前,先进绝热压缩空气储能(AA-CAES)已得到广泛应用,但其能量损失的定量研究仍未得到解决。因此,定义往返效率(RTE)为100%的理想AA-CAES,从因素和组分两个方面量化AA-CAES中的能量损失,从而阐明AA-CAES的损失机理。首先,确定了影响AA-CAES性能的8个能量损失因子。然后,根据组件类型,识别出AA-CAES的6个组件。在此基础上,建立了相应的热力学模型,得到了系统的能量流。最后,根据给定的工况,利用单变量分析,依次得到各因素、各组分对应的能量损失,并进行参数化分析。结果表明,在能量损失因子方面,储能装置对系统性能的影响最大,压缩功增量deccharge为72.56 MWh, RTE为89.21%。在部件方面,压缩机和涡轮机对系统性能的影响最大。此外,各因素之间存在协同效应。不同因素共同作用的效果大于单个值的叠加。
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