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储能系统技术 储能系统 ★ 5.0

含水层压缩空气储能的非线性井筒多相流与热-水-力耦合分析

Coupled nonlinear wellbore multiphase flow and thermo-hydro-mechanical analysis of compressed air energy storage in aquifers

作者 Yi Li · Qian Zhou · Hao Yu · Yi Li · Yinjiang Liu · Leqing Huang · Dong Tang · Guijin Zhang · Yaning Liu
期刊 Applied Energy
出版日期 2025年1月
卷/期 第 377 卷
技术分类 储能系统技术
技术标签 储能系统
相关度评分 ★★★★★ 5.0 / 5.0
关键词 The mechanical effects on the performance of CAESA are studied for the first time.
语言:

中文摘要

摘要 含水层压缩空气储能(CAESA)是一种低成本、大规模的储能技术。为研究储层力学效应对CAESA的影响,本文开发了一个耦合非线性井筒多相流与热-水-力(THM)过程的模拟器THMW-Air,并利用Pittsfield示范CAESA项目的数据验证了其有效性。采用未包含力学过程的T2Well-EOS3模拟器对CAESA的水动力、热力学和力学行为及其能量效率进行了分析与对比。结果表明,在考虑储层力学效应后,Pittsfield现场模拟压力与监测压力之间的相关系数由0.9046提高至0.9211。CAESA含水层中的有效应力降低了2.0 MPa,渗透率至少增加了14.1%。在考虑岩土力学效应的情况下,空气在水平方向上的运移距离更远,温度和压力的上升幅度相对更小。当注入空气温度为50 °C时,THM条件下能量效率的下降速率比TH条件高9.75%;而当注入空气温度为20 °C时,THM条件下能量效率的提升速率比TH条件高5.15%。

English Abstract

Abstract Compressed air energy storage in aquifers (CAESA) is a low-cost large-scale energy storage technology . To study the mechanical influence of the reservoir on CAESA, a coupled nonlinear wellbore multiphase flow and thermo-hydro-mechanical simulator, THMW-Air, is developed and verified to be effective using data from the pilot CAESA project in Pittsfield. The hydrodynamic , thermodynamic, and mechanical behaviors, as well as the energy efficiency of CAESA, are analyzed and compared using the T2Well-EOS3 simulator, which does not include the mechanical processes. Results show that, by incorporating the mechanical effects of the reservoir, the correlation coefficient between simulated and monitored pressures in Pittsfield improves from 0.9046 to 0.9211. The effective stress in the aquifer of CAESA decreases by 2.0 MPa and the permeability increases by at least 14.1 %. By considering the geomechanical effects, the air migrates farther horizontally, and the increase in temperature and pressure is relatively smaller. When the air injection temperature is 50 °C, the rate of decrease in energy efficiency under the THM condition is 9.75 % higher than that under the TH condition, while when the air injection temperature is 20 °C, the rate of increase in energy efficiency under the THM condition is 5.15 % higher than that under the TH condition.
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SunView 深度解读

该压缩空气储能(CAES)热-流-力耦合仿真技术对阳光电源储能系统具有重要参考价值。研究揭示的温度-压力-机械应力耦合效应可优化ST系列PCS和PowerTitan储能系统的热管理策略,特别是注入温度对效率的影响(50°C时效率降低9.75%)为电化学储能热控制提供借鉴。多物理场耦合建模思路可应用于iSolarCloud平台的预测性维护算法,提升大规模储能电站的安全性和能效管理水平,支撑阳光电源构建更智能的储能解决方案。