Application and Verification of Coupled Analysis of Piled Piers

교량 말뚝기초 해석기법의 적용성 분석

  • 원진오 (연세대학교 공과대학 토목공학과) ;
  • 정상섬 (연세대학교 공과대학 토목공학과)
  • Published : 2005.06.01

Abstract

A coupled three-dimensional pile group analysis method (YSGroup) was developed considering nonlinear pile head stiffness matrices and compared with other analytical methods (elastic displacement method, Group 6.0 and FBPier 3.0). In this method, a pile cap was modelled by four-node flat shell element, a pier was modelled using 3 dimensional beam element, and individual piles were modelled as beam-column elements. Through the comparative studies on a piled pie. subjected to lateral loads in linear soil, it was found that present method (YSGroup), elastic displacement method and Group 6.0 gave similar results of lateral pile head displacement, but FBPier 3.0 was estimated to show somewhat larger displacements than those from the three methods. Displacements of superstructure (pier), including nonlinear soil behavior, could be estimated by present method (YSGroup) and FBPier 3.0 because these two methods modelled the superstructure directly by finite element techniques. It was found that pile groups in pinned pile head condition had a tendency to cause excessive rotation of the pile cap.

비선형 말뚝두부강성을 고려한 3차원 군말뚝기초 해석기법(YSGroup)을 개발하였으며 이를 기타 해석기법들(탄성 변위법, Croup 6.0, FBPier 3.0)과 비교${\cdot}$분석하였다. 본 해석기법은 말뚝캡을 평면쉘요소로, 교각은 3차원 보요소로, 그리고 개개 말뚝들은 보-기둥요소로 모델링 하였다. 교각 상단에 수평하중을 받는 $2\times2$배열 군말뚝기초에서 지반을 선형으로 가정한 경우를 대상으로 탄성변위법, Group 6.0, FBPier 3.0, 그리고 본 해석기법(YSGroup)을 이용하여 해석한 결과, 본 해석기법과 탄성변위법, Group 6.0은 서로 유사한 말뚝두부변위가 산정되었으나 FBPier 3.0는 다소 큰변위가 산정되었다. 지반의 비선형성이 고려된 상부구조물(교각)의 변위는 본 해석기법(YSGroup)과 FBPier 3.0을 통해 산정 가능하였는데, 이는 본 해석기법과 FBPier 3.0은 유한요소법을 이용하여 상부구조물을 직접 모델링하였기 때문이다. 말뚝두부조건이 힌지조건인 경우의 군말뚝은 말뚝캡의 과다한 회전이 발생할 가능성이 큼을 알 수 있었다.

Keywords

References

  1. 도로교설계기준 해설(하부구조편) (2001), 대한토목학회, pp.268-272
  2. 원진오, 정문경, 곽기석, 정상섬(2004), '홍수시 충격하중 및 유수압을 고려한 교량기초 해석', 대한토목학회지, 제24권, 제1C호, pp.49-55
  3. 정상섬, 서정주, 원진오(2002), 'Analysis of Piled Piers Considering Riverbed Scouring', 한국지반공학회 논문집, 제18권, 3호, pp.43-50
  4. Banerjee, P. K. and Davies, T. G. (1979) 'Analysis of Some Reported Case Histories of Lateally Loaded Pile Groups', Institution of Civil Engineers (ICE). Numerical Methods in Offshore Piling, London, pp.83-90
  5. Chang, Y. L. (1937), 'Discussion of Lateral Pile Loading Tests by Feagin', Transactions of ASCE, Vol.102, pp.272-278
  6. Chow, Y. K. (1987) 'Three-Dimensional Analysis of Pile Groups', Journal of Geotechnical Engineering, Vol.113, No.6, pp.59-79
  7. Desai, C. S. and Kuppusamy, T. (1980), 'Application of a Numerical Procedure for Laterally Loaded Structures', Institution of Civil Engineers (ICE). Numerical Methods in Offshore Piling, London, pp.93-99
  8. Focht, J. A. and Koch, K. J. (1973), 'Lateral Analysis of the Lateral Performance of Offshore Pile Groups', Proceedings of the 5th Offshore Technology Conference, Houston, Texas, pp.701-708
  9. Hoit, M. I., McVay, M., Hays, C., and Andrade, P. W. (1996), 'Nonlinear Pile Foundation Analysis using Florida-Pier', Journal of Bridge Engineering, Vol.1, No.4, pp.135-142 https://doi.org/10.1061/(ASCE)1084-0702(1996)1:4(135)
  10. Kriger, G. A. (1980), 'Modeling of Piled Foundations', Proceedings, Proceedings of the 12th Offshore Technology Conference, Vol.II, pp.117-128
  11. McVay, M. C., Townsend, F. C., Bloomquist, D. G., O'Brien, M., and Caliendo, J. A.(1989), 'Numerical Analysis of Vertically Loaded Pile Groups.' Proc. Found. Engrg.: Current Principles and Practices, Vol. 1, ASCE, New York, pp.675-690
  12. O'Neill, M. W. and Murchison, J. M. (1983), An evaluation of p-y relationship in sands, A report to the American Petroleum Institute, PRAC 82-41-1. University of Houston, Texas
  13. O'Neill, M. W., Ghazzaly, O. I., and Ha, H. B. (1977), 'Analysis of Three-Dimensional Pile Groups with Non-Linear Soil Response and Pile-Soil-Pile Interaction', Proceedings of the 9th Offshore Technology Conference, Vol.II, Houston, TX
  14. Poulos, H. G. and Lee, C. Y. (1989) 'Behavior of Grouted Pile in Offshore Calcareous Sand', 12th International Conference on Soil Mechanics and Foundation Engineering, Rio de Janeiro, pp.955-958
  15. Poulos, H. G. (1971) 'Behavior of Laterally Loaded Piles: Part II-Group Piles', Journal of the Soil Mechanics and Foundations Division, 97(SM5), pp.711-731
  16. Reese, L. C., and Wang, S. T. (2004) 'Analysis of a Group of Piles Subjected to Axial and Lateral Loading.' Group 6.0, Ensoft, Inc., Austin, Tex
  17. Reese, L. C. and Wang, S. T. (2000), 'A program for the analysis of piles and drilled shafts under lateral loads', LPILE Plus 4.0, Ensoft, Austin, Tex
  18. Reese, L. C. and Wang, S. T. (1996), 'Analysis of load versus settlement for an axially loaded deep foundation', TZPILE 1.0, Ensoft, Austin, Tex
  19. Reese, L. C., O'Neill, M. W. and Smith, R. E. (1970), 'Generalized Analysis of Pile Foundations' Journal of Geotechnical Engineering, ASCE, Vol. 96, No. SM1, pp.235-250
  20. Yang, Z. and Jeremic, B. (2003) 'Numerical Study of Group Effects for Pile Groups in Sands', International Journal for Numerical and Analytical Methods in Geomechanics, Vol.27, pp.1255-1276 https://doi.org/10.1002/nag.321
  21. Zhang, L., McVay, M. C., and Lai, P.(1999), 'Numerical analysis of laterally loaded 3$\times$3 to 7$\times$3 pile groups in sands', Journal of Geotechnical Engineering, ASCE, Vol.125, No.11, pp.936-946 https://doi.org/10.1061/(ASCE)1090-0241(1999)125:11(936)