Numerical Simulation of the Effect of Freeze–Thaw Cycles on the Durability of Concrete in a Salt Frost Environment
Abstract
:1. Introduction
- (1)
- In the analysis process, considering the influence of the axial force and bending moment on the relationship between bending moment and curvature, a concrete fiber beam column model is established to divide the section of concrete members into several discrete small elements and improve the characteristics of different small elements of concrete;
- (2)
- According to the joint influence of temperature field, stress field and seepage field on concrete in the process of freeze–thaw, the control differential equation of freeze–thaw cycle is established and substituted into the concrete fibers at different positions of the section, so as to analyze the fiber section in the process of freeze–thaw damage evolution;
- (3)
- Based on the coupling algorithm, the freeze–thaw damage section is divided, the non-uniform distribution of freeze–thaw damage is determined, and the division of freeze–thaw damage section is completed;
- (4)
- According to the linear relationship between the freeze–thaw damage degree, the relative dynamic elastic modulus, number of freeze–thaw cycles and location variables, the durability of concrete is numerically simulated. On this basis, the attenuation law of bond strength at different section depths after freeze–thaw is determined.
2. Numerical Simulation of the Effect of Freeze–Thaw Cycles on the Durability of Concrete in Salt Frost Environment
2.1. Establishment of Concrete Fiber Beam Column Model
2.2. Governing Differential Equations of Freeze Thaw Cycles
2.3. Division of Freeze–Thaw Damage Section Based on Coupling Algorithm
2.4. Numerical Simulation of Concrete Durability
3. Experiment
3.1. Experimental Preparation
3.2. Experimental Analysis of Temperature Shock Field
3.3. Experimental Analysis of Relative Dynamic Elastic Modulus
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Parameter | Value | Parameter | Value |
---|---|---|---|
Conductivity (W/M·K) | 1.29 | Specific heat (J/kg·°C) | 0.2 |
Density (kg/m3) | 2.5 | Expansion angle | 40 |
Dynamic modulus of elasticity (Pa) | 2.486 | Eccentricity | 0.15 |
Poisson’s ratio | 0.2 | Strain loading rate | e−2 |
Expand (1/°C) | e−5 | Viscosity parameter | e−5 |
Time (min) | Point A Temperature (°C) | Point B Temperature (°C) | Point C Temperature (°C) |
---|---|---|---|
0 | 12.26 | 13.65 | 12.66 |
100 | −22.55 | −23.57 | −22.55 |
200 | 20.88 | 21.82 | 20.87 |
300 | −9.62 | −9.26 | −10.24 |
400 | −18.29 | −19.32 | −19.32 |
500 | 23.55 | 24.95 | 24.23 |
600 | −15.88 | −15.28 | −15.55 |
700 | −24.26 | −24.55 | −24.78 |
800 | 18.33 | 19.12 | 18.52 |
900 | −17.62 | −18.43 | −18.24 |
Freeze Thaw Cycle Times | NAC (%) | RAC50 (%) | RAC100 (%) |
---|---|---|---|
0 | 100 | 100 | 100 |
100 | 70.72 | 91.53 | 97.04 |
200 | 69.38 | 86.91 | 94.4 |
300 | 61 | 79.56 | 90.42 |
400 | – | 75.03 | 87.47 |
500 | – | 60 | 84.17 |
600 | – | 54.61 | 82.8 |
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Li, H.; Zhang, Y.; Guo, H. Numerical Simulation of the Effect of Freeze–Thaw Cycles on the Durability of Concrete in a Salt Frost Environment. Coatings 2021, 11, 1198. https://doi.org/10.3390/coatings11101198
Li H, Zhang Y, Guo H. Numerical Simulation of the Effect of Freeze–Thaw Cycles on the Durability of Concrete in a Salt Frost Environment. Coatings. 2021; 11(10):1198. https://doi.org/10.3390/coatings11101198
Chicago/Turabian StyleLi, Hao, Yuan Zhang, and Haolong Guo. 2021. "Numerical Simulation of the Effect of Freeze–Thaw Cycles on the Durability of Concrete in a Salt Frost Environment" Coatings 11, no. 10: 1198. https://doi.org/10.3390/coatings11101198
APA StyleLi, H., Zhang, Y., & Guo, H. (2021). Numerical Simulation of the Effect of Freeze–Thaw Cycles on the Durability of Concrete in a Salt Frost Environment. Coatings, 11(10), 1198. https://doi.org/10.3390/coatings11101198