Analysis of the Temperature Field Effect on the Thermal Stress of the Main Tower of Long-Span Suspension Bridges
Abstract
:1. Introduction
2. Engineering Background
3. Finite Element Modeling of the Main Tower
3.1. Development of the Solid Model
3.2. Meshing of the FE Model
3.3. Boundary Conditions
4. Determination of the Calculation Parameters of the Temperature Field
4.1. Environmental Parameters of the Main Tower
4.2. Atmosphere and Solar Radiation Temperature Parameters around the Main Tower
4.3. Thermal Parameters of Concrete
4.4. Convection Heat Transfer Parameters
5. Layout of Points for the Extraction of Temperature
6. Stress Analysis of the Bare Tower Subjected to Solar Radiation Variation
6.1. Temperature Field Heat Conduction Theory
- Heat conduction refers to the heat transfer process between the same substance under the action of different temperatures. According to Fourier law, the formula of heat conduction can be expressed by Equation (6) [17]:
- 2.
- Convection heat transfer refers to the energy transfer caused by the temperature difference between the solid surface and the fluid, which can be generally divided into natural convection and forced convection. During the construction and operation of the concrete main tower, a convective heat transfer process is usually generated. That is, energy exchange occurs when the fluid contacts with the tower wall. When the fluid temperature is high, there is also heat conduction effect on the column, and heat transfer efficiency will be reduced under the influence of wind speed. Therefore, the convective heat transfer process is usually described by Newton’s cooling equation, as expressed by Equation (7) [13]:
- 3.
- Thermal radiation refers to the electromagnetic energy radiated by the object itself interacting with other objects, resulting in the process of energy transfer and heat conversion. When the temperature of the main tower is above absolute zero, it emits thermal radiation, which can be transmitted through vacuum and other media. To calculate the net heat transfer between objects in the thermal radiation process of the main tower, the Stefan–Boltzmann equation is generally adopted, as expressed by Equation (8) [13]:
6.2. Analysis of Temperature Change at Each Time
6.3. Analysis of Stress Variation in Temperature Difference at All Times
- The general heat transfer conductance analysis of the main tower model is carried out to obtain the temperature results of the node element at the required position at each moment;
- In the construction phase analysis, the heat conduction result is determined as the thermal load;
- Extract the corresponding node temperature value as a specific load to apply the forced temperature boundary conditions;
- Simultaneously calculate the heat conduction analysis and construction phase analysis, and check the required temperature difference stress in the post-processing window.
7. Conclusions
- In the daytime, the temperature of the outer wall of the main tower is greater than that of the inner wall, forming a positive temperature difference. During the night, the atmospheric temperature drops rapidly. After the heat transfer effect of concrete from outside to inside for a long time during the day, the temperature of the inner wall is gradually higher than that of the outer wall, forming a negative temperature difference.
- Under the action of positive temperature difference, the distributing area of tensile stress is mainly concentrated in the inner tower wall. The maximum value is at the corner of the intersection of the tower wall, and the range of tensile stress is mainly diffused along the vertical wall.
- Under the action of negative temperature difference, the distributing area of tensile stress is mainly concentrated in the outer tower wall. The maximum value is located in the upper part of the western outer tower wall, and the range of tensile stress is mainly diffused along the center of the tower wall to both sides.
- The maximum tensile stresses in the inner and outer tower walls are 2.8 MPa and 1.3 MPa, respectively, which meets the standard value of 2.85 MPa for the tensile strength of C60 concrete specified in the Chinese national standard.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Time | 3:00 | 6:00 | 9:00 | 12:00 | 15:00 | 18:00 | |
---|---|---|---|---|---|---|---|
Size | |||||||
1.0 m | 0.48076 | −0.18956 | −1.40343 | −2.39181 | −2.48554 | −1.5524 | |
0.5 m | 0.47976 | −0.19056 | −1.40443 | −2.39281 | −2.48654 | −1.5534 | |
0.2 m | 0.47966 | −0.19066 | −1.40453 | −2.39291 | −2.48664 | −1.5535 |
Constraint Object | Constraint Type |
---|---|
Bottom of the main tower | All nodes and units are constrained |
Prestressed steel beam with concrete | embedment |
Temporary cross braces and tower walls | Multi-point rigid connection |
Weight Density (kN/m3) | Modulus of Elasticity (MPa) | Poisson’s Ratio | Coefficient of Thermal Expansion (1/°C) | Thermal Conductivity (W/m) | Specific Heat Capacity (J/kg∙°C) | Heat Source Coefficient |
---|---|---|---|---|---|---|
26 | 3.60 × 104 | 0.2 | 1 × 10−5 | 2.7 | 1176 | 1 |
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Duan, M.; Zhu, J.; Gu, Z.; Fang, Z.; Xu, J. Analysis of the Temperature Field Effect on the Thermal Stress of the Main Tower of Long-Span Suspension Bridges. Appl. Sci. 2023, 13, 8787. https://doi.org/10.3390/app13158787
Duan M, Zhu J, Gu Z, Fang Z, Xu J. Analysis of the Temperature Field Effect on the Thermal Stress of the Main Tower of Long-Span Suspension Bridges. Applied Sciences. 2023; 13(15):8787. https://doi.org/10.3390/app13158787
Chicago/Turabian StyleDuan, Maojun, Juntian Zhu, Zhong Gu, Zijun Fang, and Jiaying Xu. 2023. "Analysis of the Temperature Field Effect on the Thermal Stress of the Main Tower of Long-Span Suspension Bridges" Applied Sciences 13, no. 15: 8787. https://doi.org/10.3390/app13158787
APA StyleDuan, M., Zhu, J., Gu, Z., Fang, Z., & Xu, J. (2023). Analysis of the Temperature Field Effect on the Thermal Stress of the Main Tower of Long-Span Suspension Bridges. Applied Sciences, 13(15), 8787. https://doi.org/10.3390/app13158787