Experimental Study on Strengthening Effect Analysis of a Deteriorated Bridge Using External Prestressing Method
Abstract
:1. Introduction
2. Experimental Program
2.1. Deteriorated Bridge
2.2. Material Properties
2.3. Measurement and Loading Plan
2.4. Strengthening Deteriorated Bridge
3. Experiment Result and Analysis
4. Conclusions
- (1)
- As a result of conducting a concrete material test by collecting approximately 50 cores from the girders of an old bridge, the compressive strength of concrete was found to be 33 MPa, which was 22% higher than that used in the design (27 MPa). However, it was not possible to confirm the change in compressive strength due to the absence of the experimental values during the bridge’s construction. In addition, as a result of performing the tensile strength test by cutting five tendons in the deteriorated bridge, it can be concluded that the decrease in tensile performance was not significant as the tendons used in the bridge exposed for 45 years were also sealed with grout.
- (2)
- After exposing the internal tendon of the deteriorated bridge, the tendon was pulled in the transverse direction to evaluate the effective tension of the existing tendon. The effective tension is 25.1~32.7 kN and assuming the maximum introduced tension, the effective tension of 40~53% is measured; it is conceivable that about 50% of the prestressing force is lost during its service period.
- (3)
- When designing the anchorage for strengthening using the external prestressing method, in some cases, early failure of the anchorage was confirmed by considering the design strength up to the applied tension and not the tensile strength of the tendon. However, in this study, the anchorage did not fail until the member was destroyed because of the design reflecting the tensile strength of the tendon, the regulation of the anchor bolt spacing, and the strict consideration of the side anchors not considered in the design. Thus, it was confirmed that sufficient attention is required when managing strengthening design.
- (4)
- The four-point loading test before and after strengthening was performed, and the strengthening effect was determined through the increase in the measured crack load. Moreover, the behavior of the bridge was relatively accurately predicted by applying the effective moment of inertia. In addition, it was difficult to determine the strengthening effect before cracking because the external tensioning method had a minimal contributive effect on the stiffness before cracking.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Duct No. | Distance 1 (m) | Tendon No. | Measured | |
---|---|---|---|---|
Force (kN) | Stress (MPa) | |||
1 | 5 | 1 | 30.8 | 613 |
2 | 32.7 | 650 | ||
2 | 9 | 1 | Tension released | |
2 | 33.4 | 664 | ||
3 | 25.1 | 499 | ||
3 | 23 | 1 | Tension released | |
2 | Tension released |
Jacking Order | Tendon Force (kN) | Anchorage Displ. (mm) | ||||
---|---|---|---|---|---|---|
Jacking Force | Setting Loss | Elastic Loss | Horizontal | Vertical | ||
T1 | 3 | 184.8 | 172.8 | 172.0 | 0.06 | 0.05 |
T2 | 2 | 180.0 | 171.0 | 168.3 | 0.03 | 0.01 |
T3 | 1 | 179.5 | 169.3 | 164.5 | 0.02 | 0 |
T4 | 4 | 181.5 | 175.5 | 175.5 | 0.02 | 0.02 |
Slope (kN/mm) | |||
---|---|---|---|
Before strengthening | 11.7 | 5.3 | 1.1 |
After strengthening | 11.9 | 6.2 | 2.7 |
Load (kN) | Displacement (mm) | Strengthening Effect 3 (%) | Remark | |
---|---|---|---|---|
Before 1 | After 2 | |||
100 | 6.6 | 7.2 | - | |
240 | 18.3 | 17.4 | - | Before 1 crack |
400 | 39.7 | 30.3 | 23.7 | |
470 | 51.7 | 37.2 | 28.0 | After 2 crack |
570 | 77.1 | 51.3 | 33.0 | |
1060 | - | 161.2 | - |
Load (kN) | Strain (με) | Strengthening Effect 3 (%) | remark | |
---|---|---|---|---|
Before 1 | After 2 | |||
100 | 90 | 94 | - | |
240 | 227 | 220 | - | Before 1 crack |
400 | 555 | 366 | 34.1 | |
470 | 741 | 452 | 39.0 | After 2 crack |
570 | 1115 | 698 | 37.4 | |
1060 | - | 2357 | - |
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Kim, S.-H.; Park, J.-S.; Jung, W.-T.; Kim, T.-K.; Park, H.-B. Experimental Study on Strengthening Effect Analysis of a Deteriorated Bridge Using External Prestressing Method. Appl. Sci. 2021, 11, 2478. https://doi.org/10.3390/app11062478
Kim S-H, Park J-S, Jung W-T, Kim T-K, Park H-B. Experimental Study on Strengthening Effect Analysis of a Deteriorated Bridge Using External Prestressing Method. Applied Sciences. 2021; 11(6):2478. https://doi.org/10.3390/app11062478
Chicago/Turabian StyleKim, Sang-Hyun, Jong-Sup Park, Woo-Tai Jung, Tae-Kyun Kim, and Hee-Beom Park. 2021. "Experimental Study on Strengthening Effect Analysis of a Deteriorated Bridge Using External Prestressing Method" Applied Sciences 11, no. 6: 2478. https://doi.org/10.3390/app11062478
APA StyleKim, S.-H., Park, J.-S., Jung, W.-T., Kim, T.-K., & Park, H.-B. (2021). Experimental Study on Strengthening Effect Analysis of a Deteriorated Bridge Using External Prestressing Method. Applied Sciences, 11(6), 2478. https://doi.org/10.3390/app11062478