Enhancing the Seismic Performance of Adjacent Building Structures Based on TVMD and NSAD
Abstract
:1. Introduction
2. Vibration Control System of Adjacent Structures Based on TVMD/NSAD
3. Vibration Transfer Function of Adjacent Building Structures Based on TVMD and NSAD
3.1. Calculation of Transfer Function
- 1
3.2. Parameter Analysis
3.2.1.
3.2.2.
4. Optimization of Vibration Parameters of Adjacent Building Structures Based on Norm Theory and the Monte Carlo Mode Search Method
5. Seismic Performance Analysis
6. Conclusions
- Based on the transfer function and time-history response diagram, it is concluded that both the TVMD vibration control system and NSAD vibration control system can play a role in vibration control of adjacent building structures proposed in this paper.
- In the TVMD vibration control system, the maximum peak value appears on the “left structure” when parameter . When parameter , the transfer function image has obvious troughs. As the parameter increases, the peak value of the transfer function on the “left structure” decreases slowly, and the peak value of the transfer function on the right of the structure increases slowly.
- In the NSAD vibration control system, the peaks of the “left structure” and the “right structure” transfer functions increase abruptly when . At , the peak value of the transfer function increases continuously. At , the peak value of the transfer function decreases continuously. When parameter , the transfer function image has obvious troughs. The parameter has little influence on the structure and fails to make the transfer function curve of the structure fluctuate significantly.
- In the mid-range response results in Section 5, it can be seen that the NSAD vibration control system is compared with the TVMD vibration control system. The NSAD vibration control system has good control ability in displacement response. TVMD vibration control system has better control ability than the NSAD vibration control system in terms of acceleration response. There is little difference in the acceleration response between the two systems.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
- ; ; ; ;
Appendix B
- ; ; ; ; ;
References
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Left Structure | Right Structure | ||||
---|---|---|---|---|---|
(kg) | (Ns/m) | (N/m) | (kg) | (Ns/m) | (N/m) |
TVMD | NSAD | ||||
---|---|---|---|---|---|
(kg) | (Ns/m) | (N/m) | (Ns/m) | (N/m) | (N/m) |
Number | Earthquake Name | Design Seismic Grouping | Venue Category | Station | Maximum Acceleration (g) | Year |
---|---|---|---|---|---|---|
1 | Chi-Chi | 1 | I | CHY010 | 0.18 | 1999 |
2 | Chuetsu-Oki | 1 | II | JOETSU OGATAKU | 0.19 | 2007 |
3 | Darfield New Zealand | 1 | III | CANTERBURY AERO | 0.189 | 2010 |
4 | EL Centro | 1 | IV | 270 Deg | 0.36 | 1940 |
5 | EL Mayor-Cucapsh | 2 | III | CAKEXICO FIRE STATION | 0.277 | 2010 |
6 | Imperial Valley | 2 | IV | CERRO PRIETO | 0.172 | 1979 |
7 | Irpinia Italy | 3 | I | BISACCTA | 0.097 | 1980 |
8 | Iwate | 3 | II | AKT019 | 0.181 | 2008 |
9 | Kobe Japan | 3 | III | ABENO | 0.225 | 1995 |
10 | San Fernando | 3 | IV | SANTA FELITA DAN | 0.156 | 1971 |
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Kang, X.; Li, S.; Yan, C.; Jiang, X.; Hou, H.; Fan, Z.; Mao, D.; Huang, Q. Enhancing the Seismic Performance of Adjacent Building Structures Based on TVMD and NSAD. Buildings 2023, 13, 2049. https://doi.org/10.3390/buildings13082049
Kang X, Li S, Yan C, Jiang X, Hou H, Fan Z, Mao D, Huang Q. Enhancing the Seismic Performance of Adjacent Building Structures Based on TVMD and NSAD. Buildings. 2023; 13(8):2049. https://doi.org/10.3390/buildings13082049
Chicago/Turabian StyleKang, Xiaofang, Shuai Li, Chao Yan, Xueqin Jiang, Hanyao Hou, Zhipeng Fan, Dun Mao, and Qiwen Huang. 2023. "Enhancing the Seismic Performance of Adjacent Building Structures Based on TVMD and NSAD" Buildings 13, no. 8: 2049. https://doi.org/10.3390/buildings13082049
APA StyleKang, X., Li, S., Yan, C., Jiang, X., Hou, H., Fan, Z., Mao, D., & Huang, Q. (2023). Enhancing the Seismic Performance of Adjacent Building Structures Based on TVMD and NSAD. Buildings, 13(8), 2049. https://doi.org/10.3390/buildings13082049