Study on Shear Behaviors and Damage Assessment of Circular Concrete Short Columns Reinforced with GFRP Bars and Spiral Stirrups
Abstract
:1. Introduction
2. Experimental Program
2.1. Materials
2.1.1. Concrete Materials
2.1.2. Reinforcing Materials
2.2. Specimen Design and Fabrication
2.3. Test Setup and Procedure
3. Results and Discussion of Shear Behaviors
3.1. Crack Patterns and Failure Mode
3.2. Load-Displacement Curves
3.3. Strain Responses
3.3.1. Concrete Strain
3.3.2. Reinforcement Strain
3.4. Crack Development
3.5. Theoretical Analysis of Shear Capacity
3.5.1. Shear Strength Contribution of FRP Spiral Stirrups
3.5.2. Prediction and Comparison of Shear Capacity
4. Damage Assessment and Discussion Based on Piezoceramic Transducers
4.1. Damage Detection Principles of Concrete Short Column Enabled Active Sensing
4.2. Time-Domain and Frequency-Domain Analysis
4.3. Energy Ratio Index (ERI) Analysis Based on Wavelet Decomposition Method
4.4. Damage Assessment
5. Conclusions
- GFRP spiral stirrups and longitudinal reinforcement can inhibit the formation of the main diagonal crack, increase the shear capacity and improve the ductility of a concrete short column. The load-displacement curve of a short column reinforced by GFRP spiral stirrups is similar to that of one reinforced by round steel stirrups, indicating that it is feasible to use GFRP bars and GFRP spiral stirrups in column constructions.
- GFRP spiral stirrups increase the shear capacity of a circular concrete short column by 5.6% and 31.1% at a stirrup reinforcement ratio of 0.19% and 0.47%, respectively. The shear capacity of a concrete short column with GFRP spiral stirrups is improved by 18.95% by increasing the longitudinal reinforcement ratio from 1.5% to 2.25%. Notably, the lateral ultimate displacement is increased by 67.7% and 400% at a stirrup reinforcement ratio of 0.19% and 0.47% in a circular concrete short column.
- The effective stress of the GFRP spiral stirrups at failure, which is from 20.1% to 26.0% of the ultimate tensile strength of a GFRP straight bar, is decreased with the increase in the stirrup reinforcement ratio and is improved by increasing the longitudinal reinforcement ratio.
- For circular concrete short columns with GFRP bars and spiral stirrups, the shear capacity can be accurately predicted by using the equation proposed by Ali et al., with a strain limit of . The CSA code provides relatively accurate shear capacity predictions and the ACI, JSCE and BISE codes provide relatively conservative shear capacity predictions.
- The energy ratio index (ERI) established by wavelet decomposition can help to identify the location of cracks in a column and the loads corresponding to the formation of cracks. Damage indices determined using smart aggregate are consistent with those obtained from load-displacement curves, indicating that with the proposed damage index based on the smart aggregate it is feasible to evaluate the damage level of the concrete short columns.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
GFRP | Glass fiber reinforced polymer |
DIC | digital image correlation |
SA | smart aggregate |
LVDT | linear variable differential transformer |
ERI | energy ratio index |
RMSD | root-mean-square deviation |
shear strength provided by the stirrups | |
the shear strength provided by the concrete | |
shear strength of the test specimen at failure | |
the angle of inclination of main the diagonal crack | |
the cross-sectional area of the spiral stirrup | |
pitch of spiral stirrups | |
the effective depth of spiral stirrups | |
diameter of the circular cross-section | |
diameter of the circle passing through the centers of the longitudinal reinforcement | |
effective stress of spiral stirrups | |
ultimate tensile strength | |
elasticity modulus of GFRP stirrup | |
predicted shear capacities | |
tested shear capacities | |
the effective height of concrete members | |
signals in different frequency bands | |
energy of those signals in different frequency bands | |
𝐸𝐼𝑅 | energy in different frequency bands obtained by the n-level wavelet decomposition |
energy ratio index in the different frequency bands | |
energy ratio index | |
damage index based on the load-displacement curve | |
applied load | |
cracking load | |
displacements corresponding to the applied loads | |
displacements corresponding to the cracking loads |
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Type | Diameter (mm) | Area (mm2) | Surface Treatment | Yield Strength (MPa) | Tensile Strength (MPa) | Elastic Modulus (GPa) | Fracture Strain (%) |
---|---|---|---|---|---|---|---|
A | 13 | 132.7 | SWSC | - | 1047.2 | 57.9 | 1.81 |
B | 6 | 28.3 | SWSC | - | 860.0 | 46.5 | 1.85 |
C | 6 | 28.3 | - | 444.3 | 483.2 | 210.0 | - |
Name | Shear-Span Ratio | Type of Longitudinal Bars | Type of Stirrups | Longitudinal Reinforcement Ratio (%) | Stirrup Reinforcement Ratio (%) |
---|---|---|---|---|---|
G1 | 1.33 | GFRP | GFRP | 1.50 | 0.19 |
G2 | 1.33 | GFRP | GFRP | 1.50 | 0.47 |
G3 | 1.33 | GFRP | - | 1.50 | 0.00 |
G4 | 1.33 | GFRP | GFRP | 2.25 | 0.19 |
S1 | 1.33 | GFRP | Round steel | 1.50 | 0.19 |
Name | The Load Corresponding to Crack Occurrence (kN) | Shear Capacity (kN) | Ultimate Displacement (mm) | Ratio of Cracking Load to Shear Capacity (%) | Failure Mode | |||
---|---|---|---|---|---|---|---|---|
First Crack | Second Crack | Third Crack | Fourth Crack | |||||
G1 | 24 | 51 | 70 | - | 95 | 10.4 | 25.3 | Shear-compression |
G2 | 36 | 56 | 61 | - | 118 | 31.0 | 30.5 | Shear-compression |
G3 | 33 | 59 | 69 | - | 90 | 6.2 | 36.7 | Shear-compression |
G4 | 36 | 42 | 60 | 85 | 113 | 15.6 | 31.9 | Shear-compression |
S1 | 24 | 50 | 65 | 80 | 108 | 12.2 | 22.2 | Shear-compression |
Code | Shear Design Equation | |
---|---|---|
ACI 440.1R-15 [21] | ||
CSA-S806 [22] | ||
JSCE 1997 [23] | ||
BISE 1999 [24] |
Name | ACI 440.1R-15 | CSA-S806 | JSCE 1997 | BISE 1999 | Proposed by Ali et al. | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
G1 | 25.9 | 23.4 | 1.93 | 90.4 | 26.6 | 0.81 | 50.7 | 8.0 | 1.62 | 54.5 | 14.8 | 1.37 | 90.4 | 15.4 | 0.90 |
G2 | 25.9 | 59.1 | 1.39 | 90.4 | 66.6 | 0.75 | 50.7 | 11.7 | 1.89 | 54.5 | 37.0 | 1.29 | 90.4 | 38.5 | 0.92 |
G3 | 25.9 | - | 3.47 | 90.4 | - | 1.00 | 50.7 | - | 1.78 | 54.5 | - | 1.65 | 90.4 | - | 1.00 |
G4 | 31.1 | 23.4 | 2.0 | 102.0 | 26.6 | 0.88 | 58.1 | 9.8 | 1.66 | 62.4 | 14.8 | 1.46 | 102.0 | 15.4 | 0.96 |
Average | - | - | 2.22 | - | - | 0.86 | - | - | 1.74 | - | - | 1.44 | - | - | 0.94 |
SD | - | - | 0.77 | - | - | 0.09 | - | - | 0.11 | - | - | 0.13 | - | - | 0.04 |
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Wang, X.; Zhou, L.; Liang, Y.; Zheng, Y.; Li, L.; Di, B. Study on Shear Behaviors and Damage Assessment of Circular Concrete Short Columns Reinforced with GFRP Bars and Spiral Stirrups. Polymers 2023, 15, 567. https://doi.org/10.3390/polym15030567
Wang X, Zhou L, Liang Y, Zheng Y, Li L, Di B. Study on Shear Behaviors and Damage Assessment of Circular Concrete Short Columns Reinforced with GFRP Bars and Spiral Stirrups. Polymers. 2023; 15(3):567. https://doi.org/10.3390/polym15030567
Chicago/Turabian StyleWang, Xiaolu, Lingzhu Zhou, Yuke Liang, Yu Zheng, Lixiao Li, and Bo Di. 2023. "Study on Shear Behaviors and Damage Assessment of Circular Concrete Short Columns Reinforced with GFRP Bars and Spiral Stirrups" Polymers 15, no. 3: 567. https://doi.org/10.3390/polym15030567
APA StyleWang, X., Zhou, L., Liang, Y., Zheng, Y., Li, L., & Di, B. (2023). Study on Shear Behaviors and Damage Assessment of Circular Concrete Short Columns Reinforced with GFRP Bars and Spiral Stirrups. Polymers, 15(3), 567. https://doi.org/10.3390/polym15030567