Research progress and prospects on pier-type submerged floating tunnels

Submerged floating tunnel (SFT) Pier -type Wave -current action Earthquake Impact load Explosion Feasibility analysis
["Lu, Yan","Liu, Zhanxiang","Xu, Wanhai"] 2024-09-15 期刊论文
Submerged floating tunnels (SFTs) represent a promising innovative transportation infrastructure, offering advantages for crossing long, large, and deep bodies of water in the future. However, critical issues regarding their responses mechanism and technique remain unclear, leading to the absence of constructed SFT prototypes globally. A pier-type SFT (PSFT) is a typical SFT configuration with relatively high stability and safety. This study reviews the progress in PSFT research and discusses critical issues and solutions, including structural design, dynamic response characteristics, and feasibility analysis. Suggestions are provided for future research and applications. PSFTs can be considered as immersed tunnels supported by underwater bridge piers. Although adequate research has been conducted on piers, piles, and tunnel tubes, limited investigations have focused on PSFTs. Existing studies are primarily based on conceptual designs of PSFT, lacking theoretical and experimental investigations. The dynamic response characteristics and progressive collapse mechanism of PSFTs under the influence of waves, currents, and earthquakes are complicated. Scouring and liquefaction can significantly reduce the bearing capacity and alter the dynamic responses of PSFTs. Refined numerical simulations and underwater shaking table tests for PSFTs remain limited. In addition, the performance degradation mechanism and damage evolution process caused by accidental loads, such as impact and explosion, should be emphasized. PSFTs are recommended for broad waters with depths ranging from 30 m to 150 m and lengths larger than 1000 m. Although construction technologies for PSFT components are sufficient and mature, guidelines specifically for PSFTs remain imperative. This highlights the necessity for extensive investigations on PSFTs, considering their mechanism and characteristics under extreme environmental loads.
来源平台:OCEAN ENGINEERING