ASSESSMENT OF BUFFETING IN THE WAKE EFFECT ON BRIDGE AERODYNAMIC STABILITY BASED ON EXPERIMENTAL MODELLING
Abstract
Introduction. This paper addresses the problem of aerodynamic stability of bridge structures, specifically the phenomenon of buffeting. The relevance of the study is driven by regular accidents and failures of bridges, among the causes of which are insufficient consideration of wind effects and aerodynamic instability of structures. The aim of this work is to experimentally assess the aerodynamic stability of a two-span road bridge (with a central span length of 130 m) considering the possible occurrence of buffeting. Methods. The research methodology includes manufacturing a physical model of the superstructures with geometric and dynamic similarity, conducting static tests to determine aerodynamic coefficients, and dynamic tests of the aerodynamic stability of the model. Key results. Experimental studies on section models have shown that buffeting can occur in a superstructure located in the aerodynamic wake behind another — with the inclination of the structure relative to the oncoming flow and the difference in the overall dimensions of the fairings playing a critical role. Experimental modelling in wind tunnels remains the key method for assessing the possibility of aerodynamic instability phenomena in long-span bridges. Refinement of computational models will reduce the risks of bridge structure failures caused by wind effects.
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Chen, X. and Kareem, A. (2001). Nonlinear response analysis of long-span bridges under turbulent winds. Journal of Wind Engineering and Industrial Aerodynamics. Vol. 89, Issues 14–15, pp. 1335–1350. [online] Available at: https://doi. org/10.1016/S0167-6105(01)00147-7 [accessed on: 04/08/2024].
Diana, G., Bruni, S., Cigada, A., and Collina, A. (1993). Turbulence effect on flutter velocity in long span suspended bridges. Journal of Wind Engineering and Industrial Aerodynamics, Vol. 48, Issues 2–3, pp. 329–342. [online] Available at: https://doi.org/10.1016/0167-6105(93)90144-D [accessed on: 05/09/2023].
Diana, G. and Omarini, S. (2020). A non-linear method to compute the buffeting response of a bridge validation of the model through wind tunnel tests. Journal of Wind Engineering and Industrial Aerodynamics, Vol. 201, p. 104163. [online] Available at: https://doi.org/10.1016/j.jweia.2020.104163 [accessed on: 10/03/2023].
Gao, W., Tao, T., and Wang, H. (2024). Wake-induced vibration of ultra-long suspenders adjacent to bridge tower. Physics of Fluids, Vol. 36, Issue 10, p. 105135. [online] Available at: https://doi.org/10.1063/5.0229591 [accessed on: 09/10/2025].
Kazakevich, M. I. (2020). Fundamentals of calculations of structures for wind effects. 2nd ed., rev. and suppl. Moscow: MISI-MGSU Publishing House.
Maistrenko, I. Yu., Ovchinnikov, I. I., Ovchinnikov, I. G., and Kokodeev, A. V. (2017). Failures and collapses of bridge constructions, analysis of their causes. Part 1. Russian Journal of Transport Engineering, Vol. 4, Issue. 4. DOI: 10.15862/13TS417. [online] Available at: https://t-s.today/PDF/13TS417.pdf [accessed on: 05/06/2025].
Maistrenko, I. Yu., Ovchinnikov, I. I., Ovchinnikov, I. G., and Uspanov, A. M. (2018). Failures and collapses of bridge constructions, analysis of their causes. Part 3. (2018) Russian Journal of Transport Engineering, Vol. 1. DOI: 10.15862/08SATS118. [online] Available at: https://t-s.today/PDF/08SATS118.pdf [accessed on: 05/06/2025].
Morais da Costa, B., Wang, J., Bogunović Jakobsen, J., Øiseth, O., þór Snæbjörnsson, J. (2022). Bridge buffeting by skew winds: A revised theory. Journal of Wind Engineering and Industrial Aerodynamics, Vol. 220, p. 104806. [online] Available at: https://doi.org/10.1016/j.jweia.2021.104806 [accessed on: 10/05/2025].
Ovchinnikov, I. I., Maistrenko, I. Yu., Ovchinnikov, I. G., and Kokodeev, A. V. (2017). Failures and collapses of bridge constructions, analysis of their causes. Part 2. Russian Journal of Transport Engineering, Vol. 4, Issue 4, pp. 1–42.
Ovchinnikov, I. I., Maistrenko, I. Yu., Ovchinnikov, I. G., and Uspanov, A. M. (2018). Failures and collapses of bridge constructions, analysis of their causes. Part 4. Russian Journal of Transport Engineering, Vol. 5, Issue 1.
Poddaeva, O. I. (2022). Fundamentals of ensuring technosphere safety of critically important transport infrastructure facilities within the life cycle. Doctoral dissertation (2.9.10), Dissertation Committee (40.2.002.08). Moscow: Russian University of Transport.
Soloviev, S. Yu. (2016). Aerodynamic stability of long-span bridges. Transport of the Russian Federation. Journal of Science, Practice, Economics, Vol. 5, Issue 66. [online] Available at: https://cyberleninka.ru/article/n/aerodinamicheskayaustoychivost-bolsheproletnyh-mostov [accessed on: 04/03/2026].
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