Study on Damping Performance of Hyperboloid Damper with SMA-Negative Stiffness
Abstract
:1. Introduction
2. SMA-Negative Stiffness Hyperboloid Shock Absorber
2.1. Design Principle
2.2. Structure
2.3. Mechanism
3. Hysteretic Performance of SMA-Negative Stiffness Hyperboloid Shock Absorber
3.1. Restoring Forces and Displacements of SMA Cables and Negative Stiffness Systems
3.2. Numerical Simulation
3.3. Parametric Analysis
3.3.1. Variation of Mechanical Properties with Radius
3.3.2. Variation of Mechanical Properties with Horizontal Displacement
3.3.3. Variation of Mechanical Properties with Cross-Sectional Area of SMA Cable
3.3.4. Variation of Mechanical Properties with Vertical Pressure
3.3.5. Effect of Hyperboloid Shape on Mechanical Properties
4. Shock Absorption Performance Analysis
4.1. Finite Element Simulation
4.2. Selection of Seismic Waves
4.3. Earthquake Response Comparative Analysis
4.3.1. Bearing Displacement Response
4.3.2. Support Hysteresis Curve
4.3.3. Pier Bottom Bending Moment Response
5. Conclusions
- SMA negative stiffness hyperboloid isolation device can provide self resetting ability for bridges. Compared with SMA positive stiffness hyperboloid isolation device, SMA negative stiffness hyperboloid isolation device can reduce the bearing displacement, increase the damping ratio and energy dissipation capacity, and partially reduce the internal force response of the substructure.
- SMA negative stiffness hyperboloid damping device reduces the bending moment at the bottom of the pier when it vibrates near the site. Compared with the three damping devices, the negative stiffness hyperboloid damping reduces the stiffness of the bridge, resulting in the reduction of the bending moment at the bottom of the pier and the amplitude of the bearing shear force.
- The magnitude of the negative stiffness of the SMA-negative stiffness hyperboloid shock absorber depends on the radius of the curved surface. The smaller the surface radius, the greater the negative stiffness effect. The stiffness optimization of the shock absorber can be achieved by adjusting the radius of the curved surface.
- With the increase of the cross-sectional area of the SMA cable, although the equivalent secant stiffness of the SMA-negative stiffness hyperboloid shock absorber increases, the energy dissipation capacity and the limit capacity increase. This will also increase the internal force response of the structure. With the increase of vertical load, the energy dissipation capacity of the SMA-negative stiffness hyperboloid shock absorber increases.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Seismic Wave | Positive Stiffness | Flat | Negative Stiffness | |
---|---|---|---|---|
RSN1602E | Amplitude/mm | 66.35 | 75.80 | 78.78 |
RSN1612E | Amplitude/mm | 58.64 | 68.25 | 72.78 |
RSN1616E | Amplitude/mm | 61.75 | 81.30 | 95.58 |
Seismic Wave | Positive Stiffness | Flat | Negative Stiffness | |
---|---|---|---|---|
RSN1602E | Amplitude/kN | 1695 | 1512 | 906 |
RSN1612E | Amplitude/kN | 1599 | 1298 | 763 |
RSN1616E | Amplitude/kN | 1689 | 1535 | 1325 |
Seismic Wave | Positive Stiffness | Flat | Negative Stiffness | |
---|---|---|---|---|
RSN1602E | Amplitude/kN·m | 13,340 | 11,224 | 6596 |
RSN1612E | Amplitude/kN·m | 14,866 | 13,166 | 9395 |
RSN1616E | Amplitude/kN·m | 16,084 | 14,628 | 10,137 |
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Chang, H.; Liu, L.; Jing, L.; Lu, J.; Cao, S. Study on Damping Performance of Hyperboloid Damper with SMA-Negative Stiffness. Buildings 2022, 12, 1111. https://doi.org/10.3390/buildings12081111
Chang H, Liu L, Jing L, Lu J, Cao S. Study on Damping Performance of Hyperboloid Damper with SMA-Negative Stiffness. Buildings. 2022; 12(8):1111. https://doi.org/10.3390/buildings12081111
Chicago/Turabian StyleChang, Huahui, Leifei Liu, Li Jing, Jingyan Lu, and Sasa Cao. 2022. "Study on Damping Performance of Hyperboloid Damper with SMA-Negative Stiffness" Buildings 12, no. 8: 1111. https://doi.org/10.3390/buildings12081111
APA StyleChang, H., Liu, L., Jing, L., Lu, J., & Cao, S. (2022). Study on Damping Performance of Hyperboloid Damper with SMA-Negative Stiffness. Buildings, 12(8), 1111. https://doi.org/10.3390/buildings12081111