Application of Viscous Damper and Laminated Rubber Bearing Pads for Bridges in Seismic Regions
Abstract
:1. Introduction
2. Application of VD-LRBP System for Highway Bridges
- LRBPs are placed between the girders and piers with no restraint of horizontal motion other than friction. Therefore, they only carry out the gravity load and transmit it to the substructures. On the other hand, dampers are not participating in transferring the gravity loads. They dissipate earthquake energy and provide the bridge with lateral stiffness. Accordingly, the increased lateral stiffness of the bridge reduces the relative displacement between piers and girders;
- In the proposed configuration, the dampers are connecting the side of the girder to the top of the pier cap. As such, dampers and LRBPs perform as a parallel system, and their displacements are equal. The system acts in series with the piers. This distinction is required for accurate modeling in finite element analysis.
Viscous Damper
3. Finite Element Analysis
3.1. Validation of the Finite Element Model
3.1.1. Bridge Model
3.1.2. Beam
3.1.3. Columns
3.1.4. Laminated Rubber Bearing Pad (LRBP)
3.1.5. Viscous Damper
3.1.6. Verification of Finite Element Model
3.2. Analysis for VD-LRBP System Performance
Selected Ground Motions
4. Performance of VD-LRBP under Northridge Ground Motion
5. Reproducibility and Repeatability of the System Effectiveness
5.1. Tabas Ground Motion Record
5.2. Kobe Ground Motion Record
5.3. El Centro Ground Motion Record
6. Summary and Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Beam Elements | ||
---|---|---|
Command: | Element elasticBeamColumn | SI Units (m, k, s) |
A | cross-sectional area of element | |
E | Young’s Modulus | |
G | Shear Modulus | |
J | Torsional moment of inertia of cross section * | |
Iz | Second moment of area about the local z-axis * | |
Iy | Second moment of area about the local y-axis * | |
transfTag | Identifier for previously-defined coordinate-transformation (CrdTransf) object | (0, 0, 1) |
Material Properties of Confined Concrete (Units: Pascal (N/m2)) | ||
---|---|---|
Command | uniaxialMaterial Concrete01 | |
fpc | concrete compressive strength at 28 days (compression is negative) | |
epsc0 | concrete strain at maximum strength | |
fpcu | concrete crushing strength | |
epsU | concrete strain at crushing strength |
Material Properties of Unconfined Concrete (Units: Pascal (N/m2)) | ||
---|---|---|
Command | uniaxialMaterial Concrete01 | |
fpc | concrete compressive strength at 28 days (compression is negative) | |
epsc0 | concrete strain at maximum strength | |
fpcu | concrete crushing strength | |
epsU | concrete strain at crushing strength |
Material Properties of Reinforcing Bars (Units: N and Pascal (N/m2)) | ||
---|---|---|
Command | uniaxialMaterial Steel02 | |
Fy | yield strength | |
E | initial elastic tangent | |
b | strain-hardening ratio (ratio between post-yield tangent and initial elastic tangent) |
Modeling the LRBP (Units: Pascal (N/m2)) | ||
---|---|---|
Command | Flat Slider Bearing Element | |
frnMdlTag | previously-defined FrictionModel | Coulomb Friction |
kInit | initial elastic stiffness in local shear direction | |
P matTag | previously-defined UniaxialMaterial in axial direction | Rigid |
T matTag | previously-defined UniaxialMaterial in torsional direction | |
My matTag | previously-defined UniaxialMaterial in moment direction around local y-axis | |
Mz matTag | previously-defined UniaxialMaterial in moment direction around local z-axis |
Earthquake Station | RSN (s) | Magnitude |
---|---|---|
Northridge Newhall Fire | 1044 | 6.69 |
TABAS | 143 | 7.35 |
Kobe (Japan) | 1119 | 6.9 |
Imperial Valley (El Centro) | 182 | 6.53 |
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Khedmatgozar Dolati, S.S.; Mehrabi, A.; Khedmatgozar Dolati, S.S. Application of Viscous Damper and Laminated Rubber Bearing Pads for Bridges in Seismic Regions. Metals 2021, 11, 1666. https://doi.org/10.3390/met11111666
Khedmatgozar Dolati SS, Mehrabi A, Khedmatgozar Dolati SS. Application of Viscous Damper and Laminated Rubber Bearing Pads for Bridges in Seismic Regions. Metals. 2021; 11(11):1666. https://doi.org/10.3390/met11111666
Chicago/Turabian StyleKhedmatgozar Dolati, Seyed Saman, Armin Mehrabi, and Seyed Sasan Khedmatgozar Dolati. 2021. "Application of Viscous Damper and Laminated Rubber Bearing Pads for Bridges in Seismic Regions" Metals 11, no. 11: 1666. https://doi.org/10.3390/met11111666
APA StyleKhedmatgozar Dolati, S. S., Mehrabi, A., & Khedmatgozar Dolati, S. S. (2021). Application of Viscous Damper and Laminated Rubber Bearing Pads for Bridges in Seismic Regions. Metals, 11(11), 1666. https://doi.org/10.3390/met11111666