Seismic Performance and Engineering Application Investigation of a New Alternative Retainer
Abstract
:1. Introduction
2. The Quasi-Static Test
2.1. Structure Design of New Retainer
2.2. Experiment Overview
2.3. Loading Protocols and Failure Criterion
3. Experiment Analysis
3.1. Analysis of Test Phenomenon
3.2. Analysis of Test Results
3.2.1. Bearing Capacity
3.2.2. Ductility
3.2.3. The Energy Consumption
4. Bridge Model Analysis
4.1. The Establishment of Finite Element Model
4.2. Approach Implementation with ANSYS
4.2.1. Sensitivity Analysis
4.2.2. Implementation of Sensitive Parameters
4.2.3. Loading Protocols
4.3. Analysis of Seismic Performance of Transverse Bridge
4.3.1. Displacement Response of the Girder
4.3.2. The Shear Response of the Pier Bottom
4.3.3. The Bending Moment Response of Pier Bottom
5. Conclusions
- (1)
- The failure mode of the new alternative retainer in the test is consistent with the design working mechanism. The two-stage graded energy dissipation of the alternative link compared to the one-time slant shear failure of the traditional concrete block, which prolongs the life cycle of the retainer, mitigates the damage of the bent cap, and is convenient to retrofit and reinforcement both retainer and bridge post-earthquake.
- (2)
- Transverse replacement of the main girder with the new alternative retainers is greatly reduced compared to without retainers. Although the seismic response of the pier inevitably increases, its increasing is gentle because the excellent energy consumption of the new retainer causes the minor inertia force to be transmitted to the substructure while maintaining the limiting displacement effect.
- (3)
- The key index affecting the seismic performance of the new alternative retainers is the thickness of the web of the alternative link, however, the influence of other design parameters, such as the thickness of the vertical plate and the number of alternative links, on the seismic performance of the new retainer will require further research.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
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Specimen Number | The Alternative Link Height (mm) | Web Thickness (mm) | The Location of Alternative Link (mm) |
---|---|---|---|
1 | 52(6 + 40 + 6) | 6 | 360 |
2 | 52(6 + 40 + 6) | 8 | 360 |
3 | 62(6 + 40 + 6) | 6 | 360 |
4 | 52(6 + 40 + 6) | 6 | 400 |
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Yan, L.; Li, G.; Gou, X.; Zhang, P.; Wang, X.; Jiang, Y. Seismic Performance and Engineering Application Investigation of a New Alternative Retainer. Polymers 2022, 14, 3506. https://doi.org/10.3390/polym14173506
Yan L, Li G, Gou X, Zhang P, Wang X, Jiang Y. Seismic Performance and Engineering Application Investigation of a New Alternative Retainer. Polymers. 2022; 14(17):3506. https://doi.org/10.3390/polym14173506
Chicago/Turabian StyleYan, Lei, Guo Li, Xiaoying Gou, Ping Zhang, Xinyong Wang, and Yu Jiang. 2022. "Seismic Performance and Engineering Application Investigation of a New Alternative Retainer" Polymers 14, no. 17: 3506. https://doi.org/10.3390/polym14173506
APA StyleYan, L., Li, G., Gou, X., Zhang, P., Wang, X., & Jiang, Y. (2022). Seismic Performance and Engineering Application Investigation of a New Alternative Retainer. Polymers, 14(17), 3506. https://doi.org/10.3390/polym14173506