A Study on Post-Flutter Characteristics of a Large-Span Double-Deck Steel Truss Main Girder Suspension Bridge
Abstract
:1. Introduction
2. Wind Tunnel Test of the Section Model
2.1. Background
2.2. Wind Tunnel Test Setup
3. Post-Flutter Response Characteristics
3.1. LCO Characteristics
3.2. The Influence of Aerodynamic Shape on Flutter Behavior
3.2.1. The Influence of Bridge Deck Auxiliary Structures on Flutter Performance
3.2.2. The Influence of the Central Wind-Permeable Zone on Flutter Performance
3.3. Post-Flutter “Hysteresis Phenomenon of a Subcritical Flutter”
3.4. Evolution Law of Post-Flutter Frequency and Damping
4. Conclusions
- The double-deck steel truss section model exhibits typical LCOs for all test conditions. Under the 2DOF system, the vibration is dominated by the torsional mode with bending–torsional coupling vibration. The vertical bending mode branch and torsional mode branch are separate, and their dominant frequencies are consistent. Influenced by factors such as the aerodynamic shape of the bridge, the participation degree of the vertical vibration near the critical flutter wind speed is uncertain. However, the participation degree increases with increasing incoming wind speed in the post-flutter phase. These research results make up for the lack of research on the nonlinear flutter characteristics of double-deck trusses with four main cables and provide reference for the study of flutter performance of large-span bluff body sections such as π-shaped main beams and steel box beams.
- The bridge deck auxiliary structures have a significant effect on the critical flutter wind speed of the double-deck steel truss section model. Compared to the system without bridge deck auxiliary structures, the system with bridge deck auxiliary structures has a lower critical flutter wind speed and is more prone to soft flutter. After flutter occurs, the steady-state amplitude of the bridge is also influenced by the bridge deck auxiliary structures. Under the same wind speed, the steady-state amplitude is higher in the presence of bridge deck auxiliary structures. The nonlinear limit cycle flutter of the double-deck truss rigid section model in the wind tunnel test is due to the nonlinear dependence of the structural damping and aerodynamic damping on the vibration amplitude. The generation of steady-state amplitudes of LCOs at different wind speeds and the determination of specific amplitudes depend on the competition between structural damping and aerodynamic damping. They vary with amplitude until reaching a balance where they offset each other.
- The “subcritical flutter hysteresis” was observed during the post-flutter stage. The presence of bridge deck auxiliary structures significantly contributes to the occurrence of this hysteresis phenomenon. The different steady-state amplitudes caused by different initial excitations are attributed to the characteristics of the modal damping amplitude variation. This phenomenon can be attributed to the zeros of the total system damping at different amplitudes, where only one of the zeros corresponds to an amplitude that stabilizes the LCO. This research result provides a reference mechanism explanation for the nonlinear flutter of various types of bridges.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Test Conditions | (kg/m) | (kg·m2/m) | (Hz) | (Hz) | (%) | (%) | Torsion–Bending Ratio | Degrees of Freedom | Bridge Deck Accessory Facilities | Central Wind-Permeable Zone |
---|---|---|---|---|---|---|---|---|---|---|
A1 | 27.37 | 10.947 | 1.322 | 2.541 | 0.223–0.546 | 0.168–0.460 | 1.922 | 2DOF | No | Yes |
A2 | 27.37 | 10.777 | / | 2.561 | / | 0.194–0.687 | / | SDOF | No | Yes |
B1 | 19.444 | 14.119 | 1.186 | 2.238 | 0.234–0.625 | 0.156~0.804 | 1.887 | 2DOF | Yes | Yes |
B2 | 19.444 | 14.012 | / | 2.246 | / | 0.159~0.497 | / | SDOF | Yes | Yes |
C1 | 30.72 | 13.467 | 1.285 | 2.291 | 0.211–0.510 | 0.165–0.513 | 1.783 | 2DOF | No | No |
C2 | 30.72 | 13.020 | / | 2.330 | / | 0.161–0.500 | / | 2DOF | No | No |
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Li, C.; Zou, M.; Li, K.; Han, Y.; Yan, H.; Cai, C. A Study on Post-Flutter Characteristics of a Large-Span Double-Deck Steel Truss Main Girder Suspension Bridge. Buildings 2024, 14, 3206. https://doi.org/10.3390/buildings14103206
Li C, Zou M, Li K, Han Y, Yan H, Cai C. A Study on Post-Flutter Characteristics of a Large-Span Double-Deck Steel Truss Main Girder Suspension Bridge. Buildings. 2024; 14(10):3206. https://doi.org/10.3390/buildings14103206
Chicago/Turabian StyleLi, Chunguang, Minhao Zou, Kai Li, Yan Han, Hubin Yan, and Chunsheng Cai. 2024. "A Study on Post-Flutter Characteristics of a Large-Span Double-Deck Steel Truss Main Girder Suspension Bridge" Buildings 14, no. 10: 3206. https://doi.org/10.3390/buildings14103206
APA StyleLi, C., Zou, M., Li, K., Han, Y., Yan, H., & Cai, C. (2024). A Study on Post-Flutter Characteristics of a Large-Span Double-Deck Steel Truss Main Girder Suspension Bridge. Buildings, 14(10), 3206. https://doi.org/10.3390/buildings14103206