Fatigue Characteristics of Double Damage Reinforced Prestressed Hollow Slab Beams under Freeze-Thaw Cycle Erosion
Abstract
:1. Introduction
2. Experimental Design
2.1. Component Design
2.2. Material Parameters
2.3. Main Measurement and Methods
3. Fatigue Pre-Cracking Experiment of the Prestressed Hollow Slab Beam
3.1. Static Load Failure Test
3.2. Pre-Cracking Test of the Test Beam
4. Fabrication of the Damaged Prestressed Hollow Slab
4.1. Reinforcement Treatment of the Damaged Prestressed Hollow Slab
4.2. Static Load Test of the Reinforced Prestressed Hollow Slab
4.3. Fatigue Test of the Reinforced Prestressed Hollow Slab
5. Freeze–Thaw Erosion Test of the Fatigue Damaged Reinforced Components
5.1. Freeze–Thaw Erosion
5.2. Analysis of the Test Results for Concrete Blocks in the Same Period of the Freeze–Thaw Cycle
5.3. Fatigue Characteristics of Strengthened Components under Freeze–Thaw Cycles
5.3.1. Analysis of the Apparent Performance of the Strengthened Test Plate after Freeze–Thaw Erosion
5.3.2. Fatigue Test Procedure for Freeze–Thaw Reinforcement of the Test Plate
5.3.3. Force Characteristics during the Fatigue Process of the Freeze–Thaw Erosion of the Reinforced Test Plate
5.4. Dynamic Data Analysis of Fatigue Process in the Reinforced Test Plate under Freeze–Thaw Erosion
6. Finite Element Analysis of Prestressed Hollow Slab
6.1. Establishment and Verification of the Finite Element Model for the Prestressed Hollow Slab
6.2. Establishment of the Finite Element Model for the Prestressed Hollow Slab Reinforced Components
6.3. Numerical Simulation Analysis of the Fatigue Characteristics of the Prestressed Hollow Slab Reinforced Components under Freeze–Thaw Erosion
6.3.1. Theoretical Calculation Model of Material Compressive Strength
6.3.2. Theoretical Calculation Model of the Elastic Moduli of the Materials
6.3.3. Finite Element Analysis of Fatigue Characteristics of Prestressed Reinforcement Components under Different Freeze–Thaw Cycles
6.3.4. Fatigue Life Analysis of the Prestressed Strengthened Components for Different Freeze–Thaw Cycles
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Physical Quantity of the Model | Sectional Area (A) | Length (L) | Elastic Modulus of Steel Strand (ES) | Elastic Modulus of Concrete (Ec) | Poisson’s Ratio of Concrete (μc) |
---|---|---|---|---|---|
Similarity ratio | CA = 0.25 | CL = 0.1 | CEs = 1 | CEc = 1 | Cμc = 1 |
Test Group Number | Degree of Erosion | Reinforcement Method | Loading Mode |
---|---|---|---|
B-0 | No erosion | No reinforcement | Static |
B-1 | No erosion | No reinforcement | Fatigue |
B-2 | No erosion | Bonding steel plate | Fatigue |
B-3 | No erosion | Sticking carbon fiber cloth | Fatigue |
B-4 | Freeze–thaw | Sticking carbon fiber cloth | Fatigue |
B-5 | Freeze–thaw | Bonding steel plate | Fatigue |
Before Strengthening | After Strengthening | |||||||
---|---|---|---|---|---|---|---|---|
Load (kN) | D-1/2 (mm) | D-1/4 (mm) | S-1 (με) | S-2 (με) | D-1/2 (mm) | D-1/4 (mm) | S-1 (με) | S-2 (με) |
50 | 0.30 | 0.36 | −118.2 | 67.3 | 0.25 | 0.24 | −111.1 | 67.6 |
100 | 0.66 | 0.48 | −208.5 | 122.1 | 0.53 | 0.36 | −197.8 | 110.2 |
150 | 0.94 | 0.64 | −301.7 | 162.7 | 0.79 | 0.53 | −292.1 | 154.4 |
Before Strengthening | After Strengthening | |||||||
---|---|---|---|---|---|---|---|---|
Load (kN) | D-1/2 (mm) | D-1/4 (mm) | S-1 (με) | S-2 (με) | D-1/2 (mm) | D-1/4 (mm) | S-1 (με) | S-2 (με) |
50 | 0.49 | 0.24 | −76.7 | 58.8 | 0.44 | 0.23 | −53.6 | 57.6 |
100 | 0.67 | 0.34 | −139.4 | 116.2 | 0.63 | 0.37 | −111.6 | 110 |
150 | 0.97 | 0.49 | −204.3 | 180.9 | 0.83 | 0.48 | −163.5 | 162.4 |
Test Block | Unfreeze–Thaw Cycle | 50 Freeze–Thaw Cycles |
---|---|---|
Average propagation speed (m/s) | 4350 | 3789 |
Relative dynamic elastic modulus | 100% | 87.10% |
Freeze–Thaw Cycles | Limit Average Failure Load of Cubic Specimens after Freezing and Thawing (kN) | Average Compressive Strength of Cubic Specimens after Freezing and Thawing (MPa) |
---|---|---|
0 | 553.6 | 52.59 |
50 | 482.0 | 45.79 |
Number of Fatigue Cycles | 50 kN | 100 kN | 150 kN | 200 kN |
---|---|---|---|---|
0 | 60.1 | 115.0 | 178.1 | 237.5 |
5.0 × 105 | 65.5 | 126.5 | 198.4 | 264.5 |
10.0 × 105 | 66.0 | 134.6 | 200.1 | 276.9 |
15.0 × 105 | 70.2 | 142.2 | 210.2 | 280.3 |
20.0 × 105 | 80.2 | 153.2 | 230.1 | 300.2 |
Number of Fatigue Cycles | 50 kN | 100 kN | 150 kN | 200 kN |
---|---|---|---|---|
0 | −87.2 | −168.1 | −246.4 | −328.5 |
5.0 × 105 | −96.0 | −178.4 | −257.5 | −343.3 |
10.0 × 105 | −89.4 | −177.7 | −278.2 | −370.9 |
15.0 × 105 | −100.3 | −185.5 | −290.4 | −387.2 |
20.0 × 105 | −112.3 | −196.3 | −300.6 | −412.3 |
Number of Fatigue Cycles | 50 kN | 100 kN | 150 kN | 200 kN |
---|---|---|---|---|
0 | 0.48 | 0.71 | 0.87 | 1.16 |
5.0 × 105 | 0.50 | 0.73 | 0.93 | 1.25 |
10.0 × 105 | 0.53 | 0.84 | 1.02 | 1.36 |
15.0 × 105 | 0.63 | 0.88 | 1.13 | 1.51 |
20.0 × 105 | 0.65 | 0.93 | 1.32 | 1.76 |
Test Group Number | Degree of Erosion | Reinforcement Method | Peak (mm) | Trough (mm) | Amplitude (mm) |
---|---|---|---|---|---|
B-2 | No erosion | Pasting steel plate | 0.9 | −0.32 | 0.71 |
B-3 | No erosion | Pasting carbon fiber cloth | 0.37 | −0.33 | 0.71 |
B-4 | Freeze–thaw | Pasting carbon fiber cloth | 0.54 | −0.52 | 1.06 |
B-5 | Freeze–thaw | Pasting steel plate | 0.53 | −0.48 | 1.01 |
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Zheng, Y.; Liu, J.; Guo, P.; Gan, C. Fatigue Characteristics of Double Damage Reinforced Prestressed Hollow Slab Beams under Freeze-Thaw Cycle Erosion. Appl. Sci. 2021, 11, 7692. https://doi.org/10.3390/app11167692
Zheng Y, Liu J, Guo P, Gan C. Fatigue Characteristics of Double Damage Reinforced Prestressed Hollow Slab Beams under Freeze-Thaw Cycle Erosion. Applied Sciences. 2021; 11(16):7692. https://doi.org/10.3390/app11167692
Chicago/Turabian StyleZheng, Yuanxun, Jiaqi Liu, Pan Guo, and Chao Gan. 2021. "Fatigue Characteristics of Double Damage Reinforced Prestressed Hollow Slab Beams under Freeze-Thaw Cycle Erosion" Applied Sciences 11, no. 16: 7692. https://doi.org/10.3390/app11167692
APA StyleZheng, Y., Liu, J., Guo, P., & Gan, C. (2021). Fatigue Characteristics of Double Damage Reinforced Prestressed Hollow Slab Beams under Freeze-Thaw Cycle Erosion. Applied Sciences, 11(16), 7692. https://doi.org/10.3390/app11167692