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Evaluation of Unit Side Resistance of Drilled Shafts by Revised SPT N Value

환산SPT N값을 이용한 현장타설말뚝의 단위주면마찰지지력 산정

  • Received : 2013.01.17
  • Accepted : 2013.12.16
  • Published : 2013.12.31

Abstract

Bearing capacity of a drilled shaft can be separated into side resistance and base resistance. But in domestic design procedure side resistance is usually underestimated compared with base resistance. Results of bi-directional test showed that measured side resistances in each different layers are larger than those evaluated from several suggested methods. In this study, measured side resistances in each different layer of drilled shafts installed in domestic sites are analyzed and compared with evaluated side resistances from the method using revised SPT N value. For weathered rock and soft rock layer, from which rock core can hardly be obtained, we suggested new evaluated methods using revised SPT N value instead of the method using uniaxial compressive strength of rock. Resuts showed that the ranges of side resistance of cohesive and non-cohesive layer are $f_s{\leq}5tf/m^2$ and $f_s{\leq}15tf/m^2$ respectively. Range of side resistance in weathered rock is $15tf/m^2$ < $f_s{\leq}50tf/m^2$ and that in soft rock $f_s{\geq}35tf/m^2$.

말뚝의 지지력은 주면마찰력과 선단지지력으로 구분할 수 있고 설계지지력을 산정 시에는 말뚝의 지지형식에 따라 두 지지력을 모두 고려하거나 둘 중의 하나만을 고려하기도 한다. 본 연구에서는 국내 현장타설말뚝의 양방향재하시험을 결과를 분석하여 각 지층별로 측정된 단위주면마찰지지력 값을 국내외의 제안식으로 산정된 값과 비교분석하였다. 토사층의 경우 SPT N 값을 이용하는 제안식 값들이 재하시험을 통하여 실측된 단위주면마찰력에 비해 작아 과소평가 되고 있음을 알 수 있었고, 암반층의 경우 국내외 제안식들이 암반의 일축압축강도를 기반으로 되어있어 코아시료 채취가 어려운 국내 풍화암이나 연암층에는 적용이 곤란하여 환산된 SPT N값을 이용한 산정식을 제안하였다. 그 결과 점성토의 단위주면마찰지지력은 $f_s{\leq}5tf/m^2$, 사질토의 단위주면마찰지지력은 $f_s{\leq}15tf/m^2$의 상한값을 제안할 수 있었다. 암반층에서는 수정 SPT N값에 따라 단위주면마찰력을 제안하였는데 풍화암층은 $15tf/m^2$ < $f_s{\leq}50tf/m^2$, 연암층은 $f_s{\geq}35tf/m^2$으로 나타났다.

Keywords

References

  1. Briaud, J. L., Tucker, L., Lytton, R. L., and Coyle, H. M. (1985), Behavior of Piles and Pile Groups in Cohesionless, Final Report, Report No. FHWA/RD-83/038, NTIS PB86-152089/AS.
  2. Canadian Geotechnical Society (2006), Canadian Foundation Engineering Manual, 4th Edition, Vancouver, BC., BiTech Publishers.
  3. FHWA (1999), Drilled Shafts: Construction Procedures and Design Methods, FHWA Publication No. FHWA-IF-99-025. Department of Transportation, McLean, VA, Federal Highway Administration, Office of Implementation.
  4. KGS (2009), Explanation of Structure Foundation Design Code, Goomibook, pp.293-368. (In Korean) KGS (2009), 구조물 기초 설계기준 해설, Goomibook, pp.293-368.
  5. Korean Bi-direction pile test Association (2012), Casebook of Korean Bi-direction pile test Association, pp.51-60. (In Korean) 한국말뚝양방향재하시험협회 (2012), 한국말뚝 양방향재하시험협회 사례집, pp.51-60.
  6. KSCE (2001), Explanation of Road Bridge Design Code, Kimoondang, pp.207-313. (In Korean) KSCE (2001), 도로교설계기준 해설, Kimoondang, pp.207-313.
  7. Lee, S. W., Yoon, M. S., and Kim, M. H. (2011), A study on correlation between SPT N value and unit side resistance, Korea Geotechnical Society Fall National Conference, Soptember 22-23, 2011, Ghuncheon : Gangwon University, pp.541-548.
  8. Meyerhof, G. G. (1976), Bearing Capacity and Settlement of Pile Foundations, Journal of the Geotechnical Engineering Division, ASCE, pp.197-228.
  9. NAVFAC (1982), Foundations and earth structures, Design manual 7.2, Dept. of the Navy Naval Facilities eng. Command.
  10. No, J. H. and Lee, D. H. (2003), Design calculation Example for SPTN value and Foundation, Gunsulbook, pp.17-89. (In Korean) No, J. H. and Lee, D. H. (2003), N치와 기초구조물의 설계 계산예, Gunsulbook, pp.17-89.
  11. Reese, L. C. and O'Neill, M. W. (1988), Drilled Shafts Student Workbook, NHI Course. 13214, Federal Highway Administration, August.

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  1. 토질특성에 따른 현장타설말뚝 지지력 산정 경험식의 적용성 vol.18, pp.4, 2019, https://doi.org/10.12814/jkgss.2019.18.4.167