压缩空气储能
压力(语言学)
结构工程
参数统计
平面应力
工程类
应力场
反对称关系
内压
岩土工程
压缩空气
能量(信号处理)
功能(生物学)
抗压强度
参数化设计
座舱增压
领域(数学)
艾利函数
动作(物理)
平面(几何)
旋转对称性
应变能
储能
计算机模拟
石油工程
覆岩压力
压力容器
侧向土压力
还原(数学)
内力
数值分析
机械
优化设计
作者
Zeyuan Sun,Cheng Zhao,Jinquan Xing,Qinyuan Luo
摘要
Abstract This study addresses the stress distribution in the lining‐surrounding rock composite structure of a compressed air energy storage (CAES) chamber under the combined action of high internal pressure and complex external loading. An analytical mechanical model based on the plane strain assumption is proposed. Using the Airy stress function method, the axisymmetric and antisymmetric components are solved and superimposed to derive the elastic stress field of the lining and surrounding rock. The results are validated through numerical simulations using Abaqus, showing a high degree of agreement, with relative deviations less than 2.8%. Based on this, a calculation method for the minimum safe burial depth (SBD‐L‐Min) is proposed and the supporting effectiveness of the lining is evaluated. The analysis reveals that ultra‐high‐performance concrete outperforms ordinary concrete in terms of stiffness, strength, and gas‐tightness, effectively reducing the required burial depth and enhancing structural safety and long‐term durability. Parametric analyses further demonstrate the critical influence of lining thickness, surrounding rock quality, and lateral pressure coefficient on burial depth and support performance. The high‐resolution, mesh‐free analytical method developed in this study ensures high computational efficiency, providing not only a reliable theoretical framework but also practical insights for the design and optimization of CAES chambers. It offers robust theoretical support for site selection and lining design in underground energy storage systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI