헤테로 코어형 광파이버 센서를 이용한 콘크리트 프리스트레스 측정용 매립형 센서 모듈의 개발 연구
- Alternative Title
- An embedded sensor module for measuring concrete prestress using hetero-core optical fiber sensor
- Abstract
- Currently, the bridge type that is widely used in the construction of small and medium span bridges uses prestressed concrete (PSC). This technology was first introduced in Korea in 1962, and PSC is widely applied to crucial infrastructures such as bridges, nuclear power plants, and buildings. In particular, PSC bridges are excellent in terms of safety, economy, maintenance, and aesthetics; therefore, their proportion in bridges is steadily increasing.
PSC bridge is a bridge type that improves structural efficiency by introducing prestress to concrete. However, prestress losses occur throughout the life cycle, from the construction stage to the maintenance stage. PSC structures must be properly maintained throughout their design life to ensure public safety and provide reliable service.
However, the loss in PSC bridges continuously occurs throughout the life cycle from the public construction stage to the maintenance stage; however, measuring the loss is difficult. Therefore, the amount of change in prestress must be measured to ensure the continuous safety of the PSC structure. Accordingly, the interest in stress management in the construction stage and effective prestress measurement in the maintenance stage is increasing.
The objective of this study is to develop an embedded sensor module to evaluate the prestress inside the PSC structure using a hetero-core optical fiber. A concrete-embedded sensor module based on strain measurement was constructed by utilizing the linear relationship between the bending curvature of the hetero-core optical fiber and the light loss. In addition, to examine the performance of the developed sensor module, sensor module exposure and watertightness tests were conducted. To confirm the possibility of actual application, an embedding test was conducted using a concrete specimen.
In the exposure state performance test, the power consumption was measured by transforming it into a displacement control method using a universal testing machine (MTS). As a result of the performance test, the coefficient of reliability determination (R2) for each module showed high reliability with an average of 0.98–0.99. As a result of the watertightness test using the indicator material, the necessary watertightness was observed to be secured when the module was reinforced with a silicon pad.
The embedding test of the sensor module was conducted by embedding the sensor module in the specimen mold, pouring concrete, and using the universal testing machine as in the exposure test. As a result of the embedding test, the bending and unfolding of the optical fiber attached to the inside of the module could be effectively measured according to the displacement, and R2 showed reliability of 0.78–0.93. In addition, the correlation analysis between power and displacement for the test results of the concrete embedding state and verification through regression analysis were performed. Consequently, R2 was observed to be 0.92, and the coefficient of determination of the measured value and the calculated value using the regression equation was adequate.
Two methods exist for evaluating prestress: an indirect method of calculating the cross-sectional analysis after measuring the tensile force of the tension member and a direct method of evaluating the prestress by measuring the compressive strain of the PSC structure. This study confirmed the applicability of the sensor module that can directly measure the prestress inside the PSC as an embedded sensor module that can measure the deformation inside the concrete specimen through experimental analysis. Moreover, the following conclusions were obtained regarding the performance test of the developed embedded sensor module.
In the exposure state performance test, the linearity was satisfactory in the coefficient of determination and repeated measurements, and watertightness was also secured, indicating that it could be used as an embedded sensor module. In the embedding test, as a result of the embedded state test in the specimen, the prestress could be directly evaluated by measuring the amount of internal strain of the PSC structure. To verify the embedding test, a regression equation between displacement and power was derived. As a result of pairwise comparison between the displacement obtained by calculating the regression equation and the measured displacement, R2 was 0.90, proving that the regression equation had sufficient field applicability.
With the recent development in IT technology, research on the convergence of structure health monitoring (SHM) technology and IT technology is being actively conducted. In the case of the embedded sensor module using a hetero-core optical fiber developed in this study, the stress of the concrete could be determined by measuring the amount of deformation inside the PSC structure. In conclusion, the sensor module developed in this study can be used as a useful data for the development of a sensor module for internal embedding in the PSC partial girder model experiment.
- Author(s)
- 송영용
- Issued Date
- 2023
- Awarded Date
- 2023-02
- Type
- Dissertation
- Keyword
- Hetero-core, Optical Fiber Sensor, Prestress, Sensor-Module, Embedded Sensor
- Publisher
- 부경대학교
- URI
- https://repository.pknu.ac.kr:8443/handle/2021.oak/33202
http://pknu.dcollection.net/common/orgView/200000669350
- Alternative Author(s)
- Young-Yong Song
- Affiliation
- 부경대학교 대학원
- Department
- 대학원 토목공학과
- Advisor
- 이환우
- Table Of Contents
- Ⅰ. 서 론 1
1.1 연구배경 및 필요성 1
1.1.1 연구 배경 1
1.1.2 연구 필요성 3
1.2 연구목적 4
1.3 연구방법 4
1.4 연구범위 및 한계 6
1.5 논문 구성 6
Ⅱ. 선행연구 8
2.1 선행연구 동향 8
2.1.1 프리스트레스 긴장력 계측 및 손실 연구 8
2.1.2 긴장력 계측 센서 연구 9
2.2 구조물 건전성 모니터링 11
2.2.1 구조물 건전성 모니터링(SHM) 소개 11
2.2.2 PSC 구조물의 SHM 12
2.3 센서 문헌 자료 15
2.3.1 센서의 개요 15
2.3.2 광파이버 센서 18
2.3.3 자기장 센서 30
Ⅲ. 매립형 센서 모듈 제작 32
3.1 센서제작 개요 32
3.1.1 센서 모듈 개요 32
3.1.2 단일모드 광섬유 굽힘 손실 이론 35
3.2 노출형 센서 검증 38
3.2.1 노출형 센서 모듈 제작 이력 38
3.2.2 노출형 센서 모듈 개발실험 검증 40
3.2.3 분석 및 고찰 44
3.3 매립형 센서 모듈 제작 47
3.3.1 센서 모듈 제원 47
3.3.2 구조와 측정원리 49
3.4 매립형 센서 모듈 실험장치 51
3.4.1 주요 실험장비 51
3.4.2 전동변위 측정장치 52
3.4.3 전력량 측정장치 53
Ⅳ. 매립형 센서 모듈 성능실험 55
4.1 센서 모듈 노출실험 55
4.1.1 실험개요 55
4.1.2 전동장치에 의한 실험 56
4.1.3 구조실험 시스템에 의한 실험 62
4.1.4 분석 및 고찰 66
4.2 수밀실험 68
4.2.1 실험개요 68
4.2.2 1차 실험 69
4.2.3 2차 실험 70
4.2.4 3차 실험 71
4.2.5 4차 실험 73
4.2.6 분석 및 고찰 74
Ⅴ. 매립형 센서 모듈 매립실험 75
5.1 센서 모듈 매립실험 75
5.1.1 실험개요 75
5.1.2 실험장비 76
5.1.3 콘크리트 공시체 실험 77
5.1.4 센서 모듈 콘크리트 매립상태 실험 78
5.2 센서 모듈 매립실험 검증 81
5.2.1 전력과 변위간 상관분석 81
5.2.2 전력과 변위간 회귀분석 83
5.2.3 회귀식 도출 87
5.2.4 회기식 검증 88
5.3 분석 및 고찰 91
5.3.1 실험분석 91
5.3.2 고찰 92
Ⅵ. 결론 94
참고문헌 96
부록 A. 센서 모듈 노출 실험결과 102
부록 B. 센서 모듈 콘크리트 매립상태 실험결과 114
- Degree
- Doctor
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