Affiliation:
1. Russian University of Transport (MIIT)
Abstract
The submerged floating tunnel (also SFT from the English Submerged Floating Tunnel) is an innovative solution for crossing large water areas with significant depths. The structure has a number of advantages compared to traditional solutions, such as cable-stayed and suspension bridges, an underwater tunnel made of immersed tubes, as well as a traditional tunnel. The main advantages are the ability to cross water obstacles with depths significantly exceeding the record values for bridges (60 m), as well as compensation of loads from its own weight by Archimedean force to ensure positive buoyancy. At the moment, not a single project has been implemented due to serious scientific problems, but the concept is attracting the attention of researchers from different countries, since the need for such structures will increase due to the need to reduce the time of transportation of bulk cargo on transcontinental routes.
During operation, SFT structures are subject to various types of influences, including the effect of currents on the tunnel stiffening girder. Thus, the SFT contour shape has a key effect on the nature of the tunnel interaction with the current and determines the external forces that arise (drag force FD and ascending forces FL). The optimal SFT contour shape from the view point of interaction with the current allows one to predetermine the favorable operation of the structure under given conditions. In this article, the current impact on the SFT stiffening girder was assessed using a software package and the girder shape was optimized using gradient optimization capabilities. The article is part of the author’s dissertation research.
Publisher
Publishing Company World of Science LLC
Subject
Management Science and Operations Research,Mechanical Engineering,Energy Engineering and Power Technology
Reference19 articles.
1. 1. Ding H., Li Q., Jiang S., Li K. Enlightenment to Floating Tunnel of Existing Typical Submerged Tunnel. Procedia Engineering. 2016; 166: 355–361. (In Eng.) DOI: https://doi.org/10.1016/j.proeng.2016.11.560.
2. 2. Poliakov V.Yu., Khorev I.V., Demidov I.M. Modern approaches to research and development of underwater floating constructions. Russian Journal of Transport Engineering. 2022; 9(3). (In Russ.). DOI: https://doi.org/10.15862/08SATS322.
3. 3. Minoretti A., Xiang X., Johansen I.L., Eidem M. The Future of the Tunnel Crossing: The Submerged Floating Tube Bridge. Structural Engineering International. 2020; 30(4): 493–497. (In Eng.) DOI: https://doi.org/10.1080/10168664.2020.1775165.
4. 4. Jin C., Lee J., Kim H., Kim M. Dynamic Responses of a Submerged Floating Tunnel in Survival Wave and Seismic Excitations. In: Proceedings of the The 27th International Ocean and Polar Engineering Conference, San Francisco, CA, USA, 25-30 June 2017. San Francisco: International Society of Offshore and Polar Engineers
5. 2017. p. 547-551. Available at: https://onepetro.org/ISOPEIOPEC/proceedings-abstract/ISOPE17/All-ISOPE17/ISOPE-I-17-613/18247 (accessed 11th April 2023). (In Eng.).