Theoretical Research and Shaking Table Test on Nominal Aspect Ratio of the Isolated Step-Terrace Structure
Abstract
:1. Introduction
2. Mechanism of Overturning Failure of Isolated Step-Terrace Structures
2.1. Assumptions
2.2. Theoretical Derivation
3. Shaking Table Tests of Isolated Step-Terrace Structure
3.1. Description of the Prototype Model
3.2. Design of the Structural Model
3.3. Installation of Model and Instrument
3.4. Cases of Shaking Table Test
4. Results and Discussion of the Shake Table Tests
4.1. Floor Acceleration and Displacement Responses
4.2. Seismic Responses of Isolation Layer
4.3. Validation of Overturning Mechanism
- (1)
- Positive overturning mechanism
- (2)
- Negative overturning
5. Summary and Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Rotation Center within the Upper Isolation Layer | Rotation Center within the Lower Isolation Layer | |
---|---|---|
Positive overturning | (i) | (ii) |
Negative overturning | (iii) | (iv) |
Building Category | The 1st Class Buildings | The 2nd Class Buildings | The 3rd Class Buildings |
---|---|---|---|
σ0 (MPa) | 10 | 12 | 15 |
Physical Factor | Model/Prototype | Physical Factor | Model/Prototype |
---|---|---|---|
Geometry Sl | 0.1000 | Volume SV | 0.0010 |
Time St | 0.3162 | Mass Sm | 0.0025 |
Acceleration Sa | 1.0000 | Stiffness SK | 0.0250 |
Force SF | 0.0025 | Modulus SE | 0.2500 |
Outer diameter D (mm) | 100 | Vertical tensile stiffness Kvt (kN/mm) | 12.01 |
Inner diameter d (mm) | 10 | Vertical compression stiffness Kvp (kN/mm) | 46.57 |
Shear modulus G (MPa) | 0.29 | Horizontal equivalent stiffness Kh (kN/mm) | 0.139 |
Rubber layer thickness Tr (mm) | 26 | Yielded stiffness Kd (kN/mm) | 0.103 |
First shape factor S1 | 19.23 | Yield force Qy (kN) | 0.92 |
Second shape factor S2 | 3.85 | Equivalent damping ratio heq (%) | 9.3 |
Seismic Wave | Station | Direction | PGA/cm/s2 |
---|---|---|---|
Artificial ground motion | — | — | 200 |
Taft 1952 | Taft Lincoln school tunnel | N21E | 949.1 |
Ludian 2014 | Longtoushan | EW | 152.7 |
Test No. | Seismic Wave | PGA (g) | Test No. | Seismic Wave | PGA (g) |
---|---|---|---|---|---|
1 | White noise | 0.05 | 10 | Artificial ground motion | 0.40 |
2 | Artificial ground motion | 0.07 | 11 | Taft 1952 | 0.40 |
3 | Taft 1952 | 0.07 | 12 | Ludian 2014 | 0.40 |
4 | Ludian 2014 | 0.07 | 13 | White noise | 0.05 |
5 | White noise | 0.05 | 14 | Artificial ground motion | 0.51 |
6 | Artificial ground motion | 0.20 | 15 | Taft 1952 | 0.51 |
7 | Taft 1952 | 0.20 | 16 | Ludian 2014 | 0.51 |
8 | Ludian 2014 | 0.20 | 17 | White noise | 0.05 |
9 | White noise | 0.05 | - | - | - |
Total height H (m) | 1.8 | Nominal vertical compressive stress σ0 (MPa) | 2.3 |
Height of step-terrace storeys h (m) | 0.6 | Ultimate tensile stress σ1 (MPa) | 1.0 |
Total width b (m) | 1.5 | Vertical tensile stiffness to compressive stiffness ratio γ | 0.26 |
Width of step-terrace storeys a (m) | 0.6 | Equivalent horizontal stiffness ratio η | 1.0 |
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Zhang, L.; Lan, X.; Yu, W.; Wu, K.; Tao, Z.; Wu, Z.; Sun, B.; Pan, W. Theoretical Research and Shaking Table Test on Nominal Aspect Ratio of the Isolated Step-Terrace Structure. Buildings 2024, 14, 2002. https://doi.org/10.3390/buildings14072002
Zhang L, Lan X, Yu W, Wu K, Tao Z, Wu Z, Sun B, Pan W. Theoretical Research and Shaking Table Test on Nominal Aspect Ratio of the Isolated Step-Terrace Structure. Buildings. 2024; 14(7):2002. https://doi.org/10.3390/buildings14072002
Chicago/Turabian StyleZhang, Longfei, Xiang Lan, Wenzheng Yu, Kechuan Wu, Zhong Tao, Zhengjia Wu, Baifeng Sun, and Wen Pan. 2024. "Theoretical Research and Shaking Table Test on Nominal Aspect Ratio of the Isolated Step-Terrace Structure" Buildings 14, no. 7: 2002. https://doi.org/10.3390/buildings14072002
APA StyleZhang, L., Lan, X., Yu, W., Wu, K., Tao, Z., Wu, Z., Sun, B., & Pan, W. (2024). Theoretical Research and Shaking Table Test on Nominal Aspect Ratio of the Isolated Step-Terrace Structure. Buildings, 14(7), 2002. https://doi.org/10.3390/buildings14072002