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Analysis and Prediction for Abutment Behavior of Prestressed Concrete Girder Integral Abutment Bridges

프리스트레스트 콘크리트 거더 일체식 교량의 교대 거동 해석과 예측

  • Kim, Woo-Seok (Dept. of Civil Engineering, Chungnam National University)
  • Received : 2011.05.31
  • Accepted : 2011.08.16
  • Published : 2011.10.31

Abstract

This paper discusses the analysis method of prestressed concrete girder integral abutment bridges for a 75-year bridge life and the development of prediction models for abutment displacements under thermal loading due to annual temperature fluctuation and time-dependent loading. The developed nonlinear numerical modeling methodologies considered soil-structure interaction between supporting piles and surrounding soils and between abutment and backfills. Material nonlinearity was also considered to simulate differential rotation in construction joints between abutment and backwall. Based on the numerical modeling methodologies, a parametric study of 243 analysis cases, considering five parameters: (1) thermal expansion coefficient, (2) bridge length, (3) backfill height, (4) backfill stiffness, and (5) pile soil stiffness, was performed to established prediction models for abutment displacements over a bridge life. The parametric study results revealed that thermal expansion coefficient, bridge length, and pile-soil stiffness significantly influenced the abutment displacement. Bridge length parameter significantly influenced the abutment top displacement at the centroid of the superstructure, which is similar to the free expansion analysis results. Developed prediction model can be used for a preliminary design of integral abutment bridges.

이 연구는 교량의 생애 동안의 온도 변화와 콘크리트의 시간 의존 영향을 고려하여 PSC 거더 일체식 교량의 해석 방법과 교대의 변위를 예측하는 모델 개발에 관한 것이다. 비선형 수치 해석 모델은 지반-구조물의 상호작용을 고려하며, 재료의 비선형 또한 고려되었다. 개발된 수치 해석 모델을 이용하여 총 243가지의 경우에 대하여 변수 연구를 하였다. 고려된 변수는 (1) 열팽창 계수, (2) 교량 길이, (3) 뒤채움재의 높이, (4) 뒤채움재의 강성, 그리고 (5) 말뚝-지반 강성이다. 변수 연구의 결과는 열팽창 계수, 교량 길이, 말뚝-지반의 강성이 지배적인 영향을 나타내는 것으로 드러났다. 또한, 교량의 길이는 교대의 윗부분의 변위에 지배적인 영향을 미치며 자유팽창 수축과 유사하였다. 하부의 변위에는 다른 변수들의 영향으로 추정이 쉽지 않았다. 개발된 교대의 변위 추정 모델은 기본 설계시에 사용될 수 있을 것이다.

Keywords

References

  1. Thippeswamy, H. K., GangaRao, H. V. S., and Franco, J., M., "Performance Evaluation of Jointless Bridges," Journal of Bridge Engineering, Vol. 7, No. 5, 2002, pp. 276-289. https://doi.org/10.1061/(ASCE)1084-0702(2002)7:5(276)
  2. Dicleli, M. and Albhaisi, S. M., "Effect of Cyclic Thermal Loading on the Performance of Steel H-Piles in Integral Bridges with Stub-Abutments," Journal of Construction Steel Research, Vol. 60, 2004, pp. 161-182. https://doi.org/10.1016/j.jcsr.2003.09.003
  3. 박영호, 남문석, "일체식 교대의 토압과 변위 거동," 대한토목학회 논문집, 27권, 3C호, 2007, pp. 163-173.
  4. 안진희, 윤지현, 김상효, 김준환, "PSC 일체식 교대 교량 의 거동특성 평가," 대한토목학회 논문집, 30권, 4A호, 2010, pp. 361-373.
  5. Kim, W. and Laman, J. A., "Numerical Analysis Method for Long-Term Behavior of Integral Abutment Bridges," Engineering Structures, Vol. 32, No. 6, 2010, pp. 1495-1508. https://doi.org/10.1016/j.engstruct.2010.01.004
  6. American Association of State Highway and Transportation Officials, AASHTO LRFD Bridge Design Specifications, Washington, DC, 2010.
  7. 한국도로공사 도로연구소, 무조인트교량 실용화 연구, 한국도로공사, 1999.
  8. Kim, W. and Laman, J. A., "7-Year Field Monitoring of Four Integral Abutment Bridges," Journal of Performance of Constructed Facilities, 2011 (Accepted).
  9. Laman, J. A. and Kim,W., Monitoring of Integral Abutment Bridges and Design Criteria Development, Final Report No. FHWA - PA - 2009 - 005 - PSU002, Pennsylvania Transportation Research Council, 2009, 650 pp.
  10. American Petroleum Institute (API), Recommended Practice for Planning, Designing, and Constructing Fixed Offshore Platforms-Working Stress Desgin, 20th Ed., APIRP2A-WSD, Washington, DC, 1993.
  11. American Concrete Institute Committee 209, Prediction of Creep, Shrinkage, and Temperature Effects in Concrete Structures, ACI Manual of Concrete Practice Part I, American Concrete Institute, Detroit, MI, 2004.
  12. Oesterle, R.. G., Refai, T. M., Volz, J. S., Scanlon, A., and Weiss, W. J., "Jointless and Integral Abutment Bridges Analytical Research and Proposed Design Procedures," Report DTFH 61-92-C-00154, FHWA, US Department of Transportation, 1998.
  13. Arockiasamy, M., Butrieng, N., and Sivakumar, M., "Stateof- the-Art of Integral Abutment Bridges: Design and Practice," Journal of Bridge Engineering, Vol. 9, No. 5, 2004.
  14. Kim, W. and Laman, J. A., "Integral Abutment Bridge Response under Thermal Loading," Engineering Structures, Vol. 32, Issue 6, 2010, pp. 1495-1508. https://doi.org/10.1016/j.engstruct.2010.01.004
  15. 박종면, 이재혁, 유성근, "P.C. Beam을 이용한 일체식교대 교량의 설계 및 시공," 콘크리트학회지, 10권, 3호, 1998, pp. 53-61.

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