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Analysis of Shear Resistance Characteristics in Pile-Soil Interface using Large-Scale Direct Shear Test

대형직접전단시험을 통한 말뚝과 지반 경계면의 전단특성 분석

  • Received : 2022.09.14
  • Accepted : 2022.09.21
  • Published : 2022.09.30

Abstract

In this study, a large-scale direct shear test was performed to evaluate the shear characteristics of the pile-soil interface according to the fines content and confining pressure conditions as a reasonable evaluation method of the pullout resistance performance of pile considering the soil conditions. It was found that the shear stress was greatly generated under the conditions of high normal stress and low fines content. In addition, the maximum shear stress was found to be rather large under the conditions of the same normal stress and fines content, when pile surface had high roughness. The internal friction angle decreased at the pile-soil interface, when the fines content in the ground increased. On the other hand, the cohesion decreased under the condition of high fines content. And the internal friction angle and cohesion were large regardless of the fines content in the model ground, when the roughness of the pile surface was high.

본 연구에서는 지반조건을 고려한 말둑의 인발저항 성능의 합리적인 평가방법 확립의 일환으로써, 지반의 세립분 함유율 및 구속압 조건에 따른 말뚝과 지반 경계면의 전단특성을 평가하기 위한 대형직접전단시험을 수행하였다. 그 결과, 수직하중이 증가하고 모형지반의 세립분 함유율이 작을수록 전단변형에 따른 전단응력이 크게 발생됨을 알 수 있었다. 그리고 동일한 수직하중과 세립분 함유율 조건에서 말뚝 모형체의 표면이 거칠수록 최대전단응력은 다소 크게 나타났다. 강도정수로써 내부 마찰각과 점착력을 산정하여 분석한 결과, 모형지반의 세립분 함유율이 증가할수록 모형체 경계면에서의 내부마찰각은 감소하였으나 점착력은 증가하는 것을 알 수 있었다. 또한, 말뚝 모형체 표면이 거칠수록 모형지반의 세립분 함유율에 관계 없이 내부마찰각과 점착력은 크게 나타났다.

Keywords

Acknowledgement

This work has been supported by the National Research Foundation of Korea(NRF) grant funded by the Korea government(MSIT)(No.2021R1F1A1052445).

References

  1. American Association of State Highwayand Transportation Official (AASHTO) (2007), AASHTO LRFD Bridge Design Specifications 4th Edition, ASSHTO, Washington D.C.
  2. American Association of State Highwayand Transportation Official (AASHTO) (2010), AASHTO LRFD Bridge Design Specifications 5th Edition, ASSHTO, Washington D.C.
  3. Cho, S. H. and Kim, H. M. (2010), "Characteristics on Pullout Behavior of Belled Tension Pile in Sandy Soils", Journal of the Korea Academia-Industrial cooperation Society, Vol.11, No.9, pp.3599-3609. (in Korean with English summary) https://doi.org/10.5762/KAIS.2010.11.9.3599
  4. Das, B. M. and Seeley, G. R. (1975), "Uplift Capacity of Buried Model Piles in Sand", Journal of the Geotechnical Engineering Division, Vol.101, No.10, pp.1091-1094. https://doi.org/10.1061/AJGEB6.0000208
  5. Jung, G. J., Kim, D. H., Lee, C. J. and Jeong, S. S. (2017), "Analysis of Skin Friction Behavior in Prebored and Precast Piles Based on Field Loading Test", Journal of the Korean Geotechnical Society, Vol.33, No.1, pp.31-38. (in Korean with English summary) https://doi.org/10.7843/KGS.2017.33.1.31
  6. Konkol, J. and Mikina, K. (2021), "Some Aspects of Shear Behavior of Soft Soil-Concrete Interfaces and Its Consequences in Pile Shaft Friction Modeling", Materials, 14, 2578. https://doi.org/10.3390/ma14102578
  7. Lim, H., Park, Y. and Park, J. (2002), "Investigation of Characteristics and Suggestion of Evaluation Formulae for Skin Resistance of SIP", Journal of the Korean Geoenvironmental Society, Vol.3, No.2, pp.15-21. (in Korean with English summary)
  8. Lim, Y. J. and Seo, S. H. (2002), "Uplift Testing and Load-transfer Characteristics of Model Drilled Shafts in Compacted Weathered Granite Soils", Journal of the Korean Geotechnical Society, Vol.18, No.4, pp.105-117. (in Korean with English summary)
  9. Meyerhof, G. G. (1959), "Compaction of Sands and Bearing Capacity of Piles.", J. S. Mech. Fdtn. Div, ASCE, pp.1-29.
  10. Meyerhof, G. G. (1976), "Bearing Capacity and Settlement of Pile Foundations", Journal of Geotechnical Engineering, ASCE, Vol.102, No.GT-3, pp.197-228.
  11. Meyerhof, G. G. and Adams, J. I. (1968), "The Ultimate Uplift Capacity of Foundation", Journal of Canadian Geotechnical, Vol.5, No.4, pp.225-244. https://doi.org/10.1139/t68-024
  12. Qiao, S., Dong, C., Li, G. and Zhou, H., Wang, G. (2022), "Modified Interaction Method for Response of Group Piles Considering Pile-Soil Slip", Mathematics, Vol.10, No.2616.
  13. Reese, L. C. and O'Neill, M. W. (1988), Drilled Shafts: Construction and Design, Publication No. HI-88-042, Federal Highway Administration (FHWA).
  14. Shakir, R. and Zhu, J. (2009), "Behavior of compacted clayconcrete interface", Front. Archit. Civ. Eng. China, Vol.3, pp.85-92 https://doi.org/10.1007/s11709-009-0013-6
  15. Wang, Y. -B., Zhao, C. and Wu, Y. (2020), "Study on the Effects of Grouting and Roughness on the Shear Behavior of Cohesive Soil-Concrete Interfaces", Materials, Vol.13, No.3043.
  16. You, S. K., Hong, G., Jeong, M., Shin, H., Lee, K. W. and Ryu, J. (2018), "Effect of Relative Density and Fines Content on Pullout Resistance Performance of Drilled Shafts", Journal of the Korean Geotechnical Society, Vol.34, No.4, pp.37-47. (in Korean with English summary) https://doi.org/10.7843/KGS.2018.34.4.37
  17. You, S. K., Shin, H., Lee, K. W., Park, J., Choi, C. L. and Hong. G. (2019a), "Evaluation on Applicability of Finite Element Analysis in Model Test of Pile Pullout", Journal of the Korean Geotechnical Society, Vol.18, No.2, pp.11-21. (in Korean with English summary)
  18. You, S. K., Shin, H., Lee, K. W., Park, J., Choi, C. L. and Hong. G. (2019b), "A Study on Strength Reduction Factor of Pile-soil Interface for Evaluation of Pile Pullout Resistance by Soil Condition", Journal of the Korean Geotechnical Society, Vol.18, No.2, pp.45-54. (in Korean with English summary)