Corrosion-Fatigue Life Prediction Modeling for RC Structures under Coupled Carbonation and Repeated Loading
Abstract
:1. Introduction
2. Corrosion-Fatigue Life Prediction Modeling
2.1. Concrete Carbonation
2.2. Carbonation-Induced Reinforcing Bar Corrosion
2.3. Corrosion-Fatigue Life Prediction
2.4. Corrosion-Fatigue Life Prediction Flowchart
- (1)
- Input the structural parameters, load parameters, material behavior, and environmental factors. Then, calculate the reinforcement and concrete stress cycles due to repeated loading.
- (2)
- Determine the CO2 transport in fatigue damaged process through Equations (1)–(7).
- (3)
- Obtain the carbonation process of fatigue-damaged concrete through Equations (8) and (9).
- (4)
- Estimate the reinforcement corrosion initiation time and the corrosion rate before concrete cracking through Equations (11)–(15).
- (5)
- Compute the concrete cracking time and the corrosion rate after concrete cracking through Equations (16)–(24).
- (6)
- Calculate the reinforcement corrosion depth and corrosion ratio through Equations (10) and (25).
- (7)
- Obtain the fatigue resistance and fatigue damage of uncorroded reinforcement through Equations (26) and (27).
- (8)
- Determine the fatigue resistance decrease behavior through Equations (28)–(31).
- (9)
- Calculate the cumulative fatigue damage Dt through Equation (32),
- (10)
- Output the corrosion-fatigue life by judging whether Dt reaches 1.
3. Model Application
4. Results and Discussion
4.1. Corrosion-Fatigue Life Prediction
4.2. Effect of Traffic Frequency and Overloading
4.3. Effect of Carbonation Environment Grade
4.4. Effect of Environmental Temperature and Relative Humidity
5. Conclusions
- (1)
- The proposed corrosion-fatigue life prediction model can predict the corrosion-fatigue life simply and conveniently for RC structures under coupled carbonation and repeated loading.
- (2)
- Under the design service condition, the corrosion-fatigue performance of the 6 m-span RC slab is satisfactory. The cumulative fatigue damage in the tensile reinforcement at the slab bottom is 0.372 when the bridge is operated to the design service life, and the corrosion-fatigue life of the RC slab is 162.1 years.
- (3)
- The increase of traffic frequency and overloading ratio will reduce the corrosion-fatigue life of the 6 m-span RC slab. When the traffic frequency increases from 1000/day to 7000/day, the corrosion-fatigue life will decrease by 66.86%. When the overloading ratio increases from 0% to 20%, the corrosion-fatigue life will decrease by 58.90%.
- (4)
- The corrosion-fatigue life of the 6 m-span RC slab decreases with the increase of carbonation environment grade. Compared with the carbonation-free environment, the four carbonation environments grades A, B, C, and D will reduce the corrosion-fatigue life by 56.48%, 69.67%, 74.46%, and 77.45%, respectively.
- (5)
- The increase of environmental temperature and relative humidity will reduce the corrosion-fatigue life of the 6 m-span RC slab. Under the four different carbonation environment grades of A to D, the increase of environmental temperature and relative humidity can reduce the corrosion-fatigue life by up to 41.76%, 44.95%, 44.16%, and 41.87%, respectively.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Grade of Carbonation Environment | Description | mef |
---|---|---|
A | A general indoor environment or a general outdoor environment without rain and pollution. | 1.0–1.2 |
B | An indoor humid environment, an indoor dry and wet alternative environment, or a slightly polluted environment without rain. | 1.2–2.5 |
C | An outdoor rain environment, an acid rain environment, a general freezing-thawing environment, or a heavily polluted environment. | 2.5–4.0 |
D | An outdoor rain environment in a humid and hot area. | 4.0–4.5 |
Parameter | Value | Description |
---|---|---|
fcu | 30 MPa | Cubic compressive strength of concrete |
fc | 20.1 MPa | Compressive strength of concrete |
ft | 1.43 MPa | Tensile strength of concrete |
Ec | 3 × 104 MPa | Elastic modulus of concrete |
vc | 0.2 | Poisson’s ratio of concrete |
fy | 335 MPa | Yield strength of tensile reinforcement |
Es | 2 × 105 MPa | Elastic modulus of tensile reinforcement |
d0 | 18 mm | Diameter of tensile reinforcement |
c | 50 mm | Thickness of concrete cover |
γ | 25 kN/m3 | Weight of reinforced concrete |
mef | 2.5 | B-grade carbonation environment factor |
T | 15 °C | Environmental temperature |
RH | 65% | Environmental relative humidity |
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Cui, C.; Song, L.; Liu, J.; Yu, Z. Corrosion-Fatigue Life Prediction Modeling for RC Structures under Coupled Carbonation and Repeated Loading. Mathematics 2021, 9, 3296. https://doi.org/10.3390/math9243296
Cui C, Song L, Liu J, Yu Z. Corrosion-Fatigue Life Prediction Modeling for RC Structures under Coupled Carbonation and Repeated Loading. Mathematics. 2021; 9(24):3296. https://doi.org/10.3390/math9243296
Chicago/Turabian StyleCui, Chenxing, Li Song, Jinliang Liu, and Zhiwu Yu. 2021. "Corrosion-Fatigue Life Prediction Modeling for RC Structures under Coupled Carbonation and Repeated Loading" Mathematics 9, no. 24: 3296. https://doi.org/10.3390/math9243296
APA StyleCui, C., Song, L., Liu, J., & Yu, Z. (2021). Corrosion-Fatigue Life Prediction Modeling for RC Structures under Coupled Carbonation and Repeated Loading. Mathematics, 9(24), 3296. https://doi.org/10.3390/math9243296