Improvement of Wind-Induced Responses of Twin Towers Using Modal Substructure Method with Link Bridges
Abstract
:1. Introduction
- (1)
- Engineering design methods. These methods are employed for specific twin tower projects, using commercial finite element software to establish detailed building models and conduct modal analyses. By combining the generalized aerodynamic forces obtained from wind tunnel tests with the structural dynamic characteristics of the linked twin towers, the wind-induced responses and wind loads are calculated [8]. The advantage of this approach lies in obtaining highly reliable wind-induced responses that can directly guide engineering projects. However, its drawback is that the results obtained are only applicable to the specific project and are not efficient when used for analyzing different link conditions. Consequently, this method is not conducive to guiding wind-resistant design optimization for the linked twin towers.
- (2)
- Theoretical analysis methods. Common simplified calculation models for theoretical analysis include lumped mass models [9], rigid panel models [10,11], and cantilever beam models [12,13,14], among others. Using modal analyses of these simplified models, the natural frequencies and mode shapes of the twin towers are obtained. Utilizing hypothesized modal shapes, Lim et al. [4] introduced a 3D simplified theoretical model to assess the dynamic attributes of the linked twin towers. This model delved into the influence of link stiffness on the frequencies of these structures. While Lim’s model offers a concise equation for computing wind-induced responses of the linked twin towers, its prognostications for generalized forces and estimations of wind-induced responses entail certain ambiguities stemming from the overly simplified modal correction coefficients [15]. Addressing the limitations of Lim’s model, Song [10] proposed a more comprehensive 3D analysis model for the linked twin towers that does not require assumed modal shapes. Based on the rigid panel models, Song derived the mass and stiffness matrices of the linked twin towers and obtained their modal shapes by solving the characteristic equation. Huang [16] simplified the linked twin towers into a lumped-mass model and found that the variations in the link stiffness have minimal impact on the in-phase mode of the twin towers, but significantly affects the out-of-phase mode.
2. Wind Tunnel Experimental Setups
2.1. Testing Model Configurations
2.2. Data Processing
3. Description of MSS Method
4. Application of MSS Method in Wind Resistance Design of Linked Twin Towers
4.1. Structural Design Parameters
4.2. Improving the Wind-Induced Response in 0° Wind Direction
4.2.1. s/B = 2
4.2.2. s/B = 1
4.2.3. s/B = 0.5
4.3. Improving the Wind-Induced Response in 90° Wind Direction
4.3.1. s/B = 2
4.3.2. s/B = 1 and 0.5
5. Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Design Parameter | Value |
---|---|
the tower height | 300 m |
the tower width | 45 m |
the floor height | 4 m |
the floor mass | 2500 ton/floor |
natural frequency of each tower | 0.125 Hz (in x & y direction) |
damping ratio of each tower | 2% |
the location of the link bridge | on the top floor |
the mass of the link bridge | 1600 ton(about 1.5% generalized mass of the tower) |
other design parameters of the link bridge | to be determined |
The Parameters of in-Phase Mode | The Parameters of Out-of-Phase Mode |
---|---|
mass ratio μM = 0.015 | mass ratio μM = 0.015 |
frequency ratio μω = 1 | frequency ratio μω = 8 |
damping ratio ζB = 5% | damping ratio ζB = 0% |
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Qin, W.-f.; Tu, Z.; Yu, S.; Xie, J. Improvement of Wind-Induced Responses of Twin Towers Using Modal Substructure Method with Link Bridges. Sustainability 2023, 15, 12397. https://doi.org/10.3390/su151612397
Qin W-f, Tu Z, Yu S, Xie J. Improvement of Wind-Induced Responses of Twin Towers Using Modal Substructure Method with Link Bridges. Sustainability. 2023; 15(16):12397. https://doi.org/10.3390/su151612397
Chicago/Turabian StyleQin, Wei-feng, Zhibin Tu, Shice Yu, and Jiming Xie. 2023. "Improvement of Wind-Induced Responses of Twin Towers Using Modal Substructure Method with Link Bridges" Sustainability 15, no. 16: 12397. https://doi.org/10.3390/su151612397
APA StyleQin, W. -f., Tu, Z., Yu, S., & Xie, J. (2023). Improvement of Wind-Induced Responses of Twin Towers Using Modal Substructure Method with Link Bridges. Sustainability, 15(16), 12397. https://doi.org/10.3390/su151612397