Hybrid Vibration Control of Hospital Buildings against Earthquake Excitations Using Unbonded Fiber-Reinforced Elastomeric Isolator and Tuned Mass Damper
Abstract
:1. Introduction
2. Hybrid Vibration Control System Comprising BIS and TMD
2.1. Base Isolation System (BIS)
2.2. Tuned Mass Damper (TMD)
2.3. Hybrid Vibration Control System
3. Modeling of the UFREI-Isolated Hospital Building with TMD
3.1. Modeling of the Dwarka Hospital Building
3.2. Modeling and Design of the UFREI-Based Isolation System
3.3. Modeling and Design of the Tuned Mass Damper
4. Numerical Study
5. Conclusions
- It is possible to design highly flexible UFREI-based isolation systems for new and existing structures under certain site-specific conditions, with the help of the THM for representing its force–deformation behavior. For comparably taller structures, i.e., structures which exert larger vertical load on the isolation system, free sliders could be utilized to transfer the load from the superstructure to the substructure, where the UFREIs would only provide the restoring force to the structure.
- A feasible solution for the installation of the TMD in the base floor of the hospital building is presented herein. In order to accommodate such large TMD mass in the UFREI-isolated Dwarka Hospital building, the single TMD mass is divided into six identical mass blocks and each of them are attached to the structure ensuring the same tuned frequency in all the TMDs. Also, the maximum stroke length required for the designed TMD system in the MCE scenario was found to be 1.235 m, which could be easily accommodated on site.
- The design isolation time period of the UFREI-based isolation system is considered to be 6 s. This resulted in more than 90% reduction in the peak structural acceleration responses, peak base shear induced in the superstructure, and peak inter-story drifts in the superstructure, when the structure is base-isolated as compared to the uncontrolled structural responses. Reductions of this magnitude ensured that the structural vibration is always within the tolerable limits for the inhabitants, even during the earthquake excitation. This is extremely important to achieve operational condition in lifeline structures such as hospitals during the earthquake hazard.
- The addition of the TMD to the UFREI-isolated Dwarka Hospital building has successfully reduced the peak bearing displacements of the isolated structure by 9% to by 27%, under the various site-specific earthquakes. The maximum displacement of the structure at the isolation level was reduced to 438 mm from 598 mm. This is highly beneficial as it avoids the various practical and serviceability issues involved with large bearing displacements of flexible isolation systems.
- Importantly, the large reductions in the bearing displacement of the UFREI-isolated Dwarka Hospital building using the hybrid (UFREI and TMD) control systems did not compromise with the performance of the base-isolated structure. The structural responses of the hybrid (UFREI and TMD)-controlled Dwarka Hospital building are comparable to that of the UFREI-isolated building. In fact, the control performance of the hybrid-controlled building is even better than the UFREI-isolated building under most of the site-specific seismic excitations.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Notation | Earthquake Name | Year | Type of Earthquake Record | Recording Station | Component | Original PGA (g) | Scaled PGA (g) | Duration (s) |
---|---|---|---|---|---|---|---|---|
EQ1 | Kobe | 1995 | Far fault | JMA | NS | 0.82 | 0.49 | 150.0 |
EQ2 | Northridge | 1994 | Far fault | Sylmar Converter Station | 360 | 0.83 | 0.46 | 60.0 |
EQ3 | San Fernando | 1971 | Far fault | Pacoima Dam | S74W | 1.05 | 0.45 | 41.7 |
EQ4 | Uttarkashi | 1991 | Far fault | Uttarkashi | N15W | 0.24 | 0.42 | 39.9 |
EQ5 | Landers | 1992 | Near fault | Lucerne Valley | Parallel | 0.65 | 0.53 | 60.0 |
EQ6 | Northridge | 1992 | Near fault | Newhall | Parallel | 0.80 | 0.47 | 49.3 |
EQ7 | Northridge | 1992 | Near fault | Sylmar | Normal | 0.73 | 0.51 | 60.0 |
EQ8 | Northridge | 1992 | Near fault | Sylmar | Parallel | 0.59 | 0.41 | 60.0 |
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Banerjee, S.; Matsagar, V. Hybrid Vibration Control of Hospital Buildings against Earthquake Excitations Using Unbonded Fiber-Reinforced Elastomeric Isolator and Tuned Mass Damper. Buildings 2023, 13, 1724. https://doi.org/10.3390/buildings13071724
Banerjee S, Matsagar V. Hybrid Vibration Control of Hospital Buildings against Earthquake Excitations Using Unbonded Fiber-Reinforced Elastomeric Isolator and Tuned Mass Damper. Buildings. 2023; 13(7):1724. https://doi.org/10.3390/buildings13071724
Chicago/Turabian StyleBanerjee, Sarranya, and Vasant Matsagar. 2023. "Hybrid Vibration Control of Hospital Buildings against Earthquake Excitations Using Unbonded Fiber-Reinforced Elastomeric Isolator and Tuned Mass Damper" Buildings 13, no. 7: 1724. https://doi.org/10.3390/buildings13071724
APA StyleBanerjee, S., & Matsagar, V. (2023). Hybrid Vibration Control of Hospital Buildings against Earthquake Excitations Using Unbonded Fiber-Reinforced Elastomeric Isolator and Tuned Mass Damper. Buildings, 13(7), 1724. https://doi.org/10.3390/buildings13071724