Performance-Based Compositive Passive Control Analysis of Multi-Tower Building with Chassis: Optimization of Kelvin-Voigt Dampers
Abstract
:1. Introduction
2. Analytical Model and Motion Equation
2.1. Analytical Model of Multi-Tower Building (MTB) Adopted Compositive Passive Control (CPC) Method
2.2. State Equation of Single Degree of Freedom (DOF) System of MTB
2.3. Extended State Equation of Clough–Penzien Spectral Model
2.4. Structure Random Response Solution
3. Optimization of CPC Method
3.1. Performance Parameter Optimization of Passive Control Unit
3.2. Optimization Process
4. Example Analysis of CPC Method Application
4.1. Optimization of Performance Parameters Single-DOF System
4.2. Analysis of Vibration Control of Multi-DOF System
4.2.1. Effectiveness Analysis
- Case 1: The MTB adopts a CPC method. On the basis of inter-story isolation, the Kelvin-Voigt model is also used between adjacent towers, as shown in model 3 in Figure 5, and the connection control device is arranged on the first layer of the tower;
- Case 2: The MTB adopts a CPC method. The connecting control device is arranged on the sixth layer of the tower;
- Case 3: The MTB adopts a CPC method. The connecting control device is arranged on the 11th layer of the tower;
- Case 4: The MTB adopts a CPC method. The connecting control device is arranged on the 16th layer of the tower;
- Case 5: MTB adopts seismic scheme. It is similar to model 2, but it is formed as an uncontrolled structure without the interlayer seismic isolation, as shown in model 1 in Figure 5;
- Case 6: MTB adopts isolation scheme, as shown in model 2 in Figure 5.
4.2.2. Layout Optimization of Multi-DOF System
5. Conclusions
- The optimized performance parameters of the connection control device calculated based on the single-DOF layer shear model of MTB are also applicable to the multi-DOF layer shear model. The structural responses calculated by single-DOF layer shear model and multi-DOF layer shear model are basically the same;
- When the performance parameters and layout scheme of the control device are reasonable, the CPC method has good damping effect on the displacement response and absolute acceleration response of the structure; compared with the isolation scheme, it keeps the advantages of the isolation scheme, and reduces the response amplification caused by the interlayer isolation;
- Relatively speaking, the CPC method is better for a tower with small natural frequency and can control the structural response well. In order to effectively restrict the displacement response of the left and right towers and avoid the amplification of part of the layer response, the connection control device is better to arranged near the isolation layer;
- Taking the minimum total energy of structural vibration as the optimization objective, it is better to arrange the connection control device at the top of the structure. The control effect can reach more than 69.63%, and the highest can reach 84.64% under the condition of random ground motion as input.
- In the analysis of the paper, the effectiveness of the CPC method is studied and verified only through theoretical analysis and numerical simulation. In the subsequent research, the finite element simulation or shaking table test can be used to further verify and analysis. Besides, the plane of the calculation model selected in this paper is relatively regular, and only the horizontal excitation is considered. For structures with irregular shapes, or asymmetric structures, such as asymmetric three-tower structures, there must be torsional effect under seismic action. In the subsequent study, it is necessary to combine the coupling and torsional law of the large chassis tower system, and the optimization design of more complex passive control devices under bidirectional or three-dimensional seismic waves.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Zhang, S.; Hu, Y.; Zhang, C.; Li, S.; Tan, P. Performance-Based Compositive Passive Control Analysis of Multi-Tower Building with Chassis: Optimization of Kelvin-Voigt Dampers. Buildings 2022, 12, 137. https://doi.org/10.3390/buildings12020137
Zhang S, Hu Y, Zhang C, Li S, Tan P. Performance-Based Compositive Passive Control Analysis of Multi-Tower Building with Chassis: Optimization of Kelvin-Voigt Dampers. Buildings. 2022; 12(2):137. https://doi.org/10.3390/buildings12020137
Chicago/Turabian StyleZhang, Shangrong, Yuchen Hu, Chi Zhang, Shihao Li, and Ping Tan. 2022. "Performance-Based Compositive Passive Control Analysis of Multi-Tower Building with Chassis: Optimization of Kelvin-Voigt Dampers" Buildings 12, no. 2: 137. https://doi.org/10.3390/buildings12020137
APA StyleZhang, S., Hu, Y., Zhang, C., Li, S., & Tan, P. (2022). Performance-Based Compositive Passive Control Analysis of Multi-Tower Building with Chassis: Optimization of Kelvin-Voigt Dampers. Buildings, 12(2), 137. https://doi.org/10.3390/buildings12020137