Hydration Heat Control of Mass Concrete by Pipe Cooling Method and On-Site Monitoring-Based Influence Analysis of Temperature for a Steel Box Arch Bridge Construction
Abstract
:1. Introduction
2. Project Overview
2.1. The Newly Built Dafeng River Bridge
2.2. Bridge Construction Based on Segmental Assembling Technique
2.3. Temperature Monitoring
3. Results and Discussion
3.1. Monitoring of Hydration Heat of Mass Concrete and Analysis of Early Temperature Control
3.1.1. Hydration Heat of Mass Concrete in Cushion Cap
- (a)
- Arrangement of Temperature Monitoring Points and Cooling Pipe
- (b)
- Analysis of Hydration Heat and Cracking Based on Temperature Monitoring
3.1.2. Hydration Heat of Mass Concrete in Main Pier
- (c)
- Arrangement of Temperature Monitoring Points and Cooling Pipe
- (d)
- Analysis of Hydration Heat and Cracking Based on Temperature Monitoring
3.1.3. Hydration Heat of Mass Concrete in Arch Abutment
- (e)
- Arrangement of Temperature Monitoring Points and Cooling Pipe
- (f)
- Analysis of Hydration Heat and Cracking Based on Temperature Monitoring
3.2. Analysis of Influence Monitoring-Based Temperature Change on Bridge Deformation
3.2.1. Identification of Temperature Effect on Lattice Beam Deformation
3.2.2. Identification of Temperature Effect on Arch Rib Deformation
3.2.3. Determination of the Appropriate Closure Timing
4. Conclusions
- (1)
- The heat dissipation performance of concrete decreases with the increase in the thickness of a mass concrete structure. The temperature of the core area of the middle layer was the highest for the mass concrete structures, gradually decreasing to the outward surfaces. The average Tmax value of layer No. 3 was about 1.3, 1.2, and 1.1 times the average Tmax value of layer No. 1 for the mass concrete in the cushion cap, main pier and arch abutment, respectively.
- (2)
- The ambient temperature of concrete has a certain influence on its temperature field. The higher the molding temperature, the higher the maximum temperature value by the hydration heat effect. With each 5 °C increase in the Tmolding value, the Tmax value at the core area of layer No. 3 increased by about 4~5 °C for mass concrete. The pipe cooling method is conducive to the hydration heat control effect of mass concrete, and can effectively reduce the central temperature of concrete structures.
- (3)
- A temperature rise will cause the structure to have a certain camber in the longitudinal direction, and the longitudinal or transverse displacement value caused by the temperature change (temperature rise or drop) under the sunshine will be no less than the vertical displacement value. Due to the symmetrical construction on both sides of the river, the arch rib deformation on both sides will basically present symmetrically synchronous changes.
- (4)
- In view of the large structural temperature effect under the action of sunshine temperature change, the appropriate closure time of the arch rib is determined as 1:00~4:00 in the morning, during which the changing trends of arch back temperature and ambient temperature will be consistent, and the temperature difference is relatively small.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Zhang, T.; Wang, H.; Luo, Y.; Yuan, Y.; Wang, W. Hydration Heat Control of Mass Concrete by Pipe Cooling Method and On-Site Monitoring-Based Influence Analysis of Temperature for a Steel Box Arch Bridge Construction. Materials 2023, 16, 2925. https://doi.org/10.3390/ma16072925
Zhang T, Wang H, Luo Y, Yuan Y, Wang W. Hydration Heat Control of Mass Concrete by Pipe Cooling Method and On-Site Monitoring-Based Influence Analysis of Temperature for a Steel Box Arch Bridge Construction. Materials. 2023; 16(7):2925. https://doi.org/10.3390/ma16072925
Chicago/Turabian StyleZhang, Tan, Hua Wang, Yuejing Luo, Ye Yuan, and Wensheng Wang. 2023. "Hydration Heat Control of Mass Concrete by Pipe Cooling Method and On-Site Monitoring-Based Influence Analysis of Temperature for a Steel Box Arch Bridge Construction" Materials 16, no. 7: 2925. https://doi.org/10.3390/ma16072925
APA StyleZhang, T., Wang, H., Luo, Y., Yuan, Y., & Wang, W. (2023). Hydration Heat Control of Mass Concrete by Pipe Cooling Method and On-Site Monitoring-Based Influence Analysis of Temperature for a Steel Box Arch Bridge Construction. Materials, 16(7), 2925. https://doi.org/10.3390/ma16072925