Rock and Soil Mechanics ›› 2026, Vol. 47 ›› Issue (2): 497-514.doi: 10.16285/j.rsm.2025.0906

• Special Topic on Underground Engineering of Compressed Air Energy Storage • Previous Articles     Next Articles

FDEM-based collaborative optimization of sealing structure and lining preset joint design in underground lined rock caverns

SUN Guan-hua1, 2, WANG Zhang-xing1, 2, WANG Jiao1, 2, DONG Yi-Xin3, SHI Lu1, 2, LIU Zhi-jun4, LIN Shan5   

  1. 1. State Key Laboratory of Geomechanics and Geotechnical Engineering Safety, Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, Wuhan, Hubei 430071, China; 2. University of Chinese Academy of Sciences, Beijing 100049, China; 3. China Railway Engineering Consulting Group Co., Ltd., Beijing 100055, China; 4. School of Civil Engineering and Mechanics, Lanzhou University, Lanzhou, Gansu 730000, China; 5. Key Laboratory of Urban Security and Disaster Engineering of the Ministry of Education, Beijing University of Technology, Beijing 100124, China
  • Received:2025-08-24 Accepted:2026-01-04 Online:2026-02-10 Published:2026-02-04
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (52508463), the Key Program of Natural Science Foundation of Hubei Province (Three Gorges Innovation Development Joint Fund) (2024AFD361), the Frontier Science and Key Technologies “Open Bidding for Selecting the Best Candidates” Project of the National Key Laboratory of Geomechanics and Engineering Safety, Chinese Academy of Sciences (SKLGME-JBGS2404) and the Science and Technology Special Program “Open Bidding for Selecting the Best Candidates” Project of China Minmetals Corporation (2025ZXA04).

Abstract: Underground lined rock caverns (LRCs) used for compressed air energy storage are highly susceptible to cracking and the development of leakage pathways under cyclic high-pressure loading. Therefore, sealing performance and crack control are critical design challenges. This study employs the finite-discrete element method (FDEM) to develop an integrated rock-lining-sealing layer model, to systematically compare flat steel plate and wave-arch liners, as well as to analyze the influence of preset joint design parameters on crack evolution and sealing behavior. The results indicate that flat steel plate liners exhibit elevated stress levels, numerous cracks, and poor structural integrity, while preset joints provide only limited mitigation. In contrast, wave-arch liners significantly reduce peak stress and redistribute cracking, concentrating damage beneath arches, thereby lowering crack density, albeit with locally larger crack widths. A combined wave-arch and preset joint design further uniform crack propagation and alleviates liner stress. Increasing the number of wave arches and preset joints improves stress uniformity and crack control. However, the maximum crack width exhibits a “decrease-increase” trend, accompanied by a transition in liner stress mode from tension-dominated to bending-shear dominated behavior. When joints are placed at arch bottoms, cracks develop uniformly along the preset paths; when combined with waterproofing and drainage measures, leakage risks can be effectively managed. Overall, the wave-arch and preset joint composite design offers notable advantages in guiding crack development, releasing strain, and enhancing sealing reliability, providing a robust reference for coordinated optimization of sealing and lining design in underground LRCs.

Key words: compressed air energy storage (CAES), lined rock cavern (LRC), sealing layer design, lining preset joint design, finite- discrete element method (FDEM)

CLC Number: 

  • TU 93
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