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A Study on the Frictional Resistance Chracteristics of Pressurized Soil Nailing Using Rapid Setting Cement

초속경 시멘트를 사용한 가압식 쏘일네일링의 주입시간에 따른 마찰저항특성에 관한 연구

  • Lee, Arum (Department of Civil and Environmental Engineering, Incheon National University) ;
  • Shin, Eunchul (Department of Civil and Environmental Engineering, Incheon National University) ;
  • Lee, Chulhee (Department of Civil and Environmental Engineering, Incheon National University) ;
  • Rim, Yongkwan (Department of Civil and Environmental Engineering, Incheon National University)
  • Received : 2018.10.16
  • Accepted : 2018.10.26
  • Published : 2018.12.30

Abstract

Although the soil nailing method is generally used as a gravity grouting, the development and application of pressurized grouting method has recently increased to address the problem of joint generation and filling due to grouting. Pressurized grouting of the soil nailing method is generally used in combination with ordinary portland cement and water. In the field, the cement is mixed with the rapid setting cement to reduce curing time because ordinary portland cement takes more than 10 days to satisfy the required strength. In this study, uniaxial compression tests and laboratory tests were carried out to confirm the efficiency of the grouting material according to the mixing ratio of rapid setting cement. The mixing ratio of 30% grouting satisfies the required strength within 7 days and satisfies the optimum gel time. As a result of the laboratory test with granite weathered soil, the reinforcing effect was confirmed to be 1.5 times as compared with the gravity type at an injection time of 10 seconds and a strain of 15%. The friction resistance increases linearly with the increase of the injection time, but it is confirmed that the friction resistance decreases due to the hydraulic fracturing effect at the injection time exceeding the limit injection pressure. Numerical analysis was performed to compare the stability of slopes not reinforced with slopes reinforced with gravity and pressurized soil nailing.

쏘일네일링 공법은 일반적으로 중력식 그라우팅 방법으로 사용되고 있으나, 그라우팅으로 인한 공동발생 및 충진 불량 문제를 해결하고자 최근에는 가압식 쏘일네일링 공법의 개발과 적용사례가 증가하고 있다. 가압식 그라우팅은 일반적으로 포틀랜트 시멘트와 물을 혼합하여 사용하나 소요강도 발현까지 10일 이상 걸리기 때문에 초속경 시멘트를 혼합하여 사용하고 있다. 이에 이 논문에서는 가압식 그라우팅 주입시간을 고려하여 적정 겔타임이 확보되는 초속경 시멘트 혼합비 30%가 가압식 쏘일네일링을 하기에 적합하다고 판단하였다. 화강풍화토 지반을 대상으로 모형토조를 제작하여 네일체의 인발실험을 한 결과, 주입시간 10초에서는 변형률 15% 일 때의 인발력이 5.7kN으로 중력식과 비교하였을 때 약 1.5배의 보강효과가 나타났다. 압력시간을 10초, 20초, 30초, 40초의 조건으로 달리할 경우에는 주입시간 증가에 따른 마찰저항력이 선형적으로 증가하나, 한계주입압력을 넘는 수준의 주입시간에서는 수압파쇄 효과로 인해 마찰저항력이 감소하는 것을 확인하였다. 또한, 수치해석을 통하여 무보강 사면과 중력식, 가압식 쏘일네일링으로 보강된 사면의 안정을 비교분석 하였다.

Keywords

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Fig. 1. Production concept of pressurized grouting soil nailing

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Fig. 2. Distribution of horizontal earth pressure

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Fig. 3. Unconfined compressive strength with curing time

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Fig. 4. Size of soil box

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Fig. 5. Pull-out load and expanded radius

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Fig. 6. Model slope for sensitivity analysis (TALREN 5)

Table 1. Properties of cement

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Table 2. Case of unconfined compression test

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Table 3. Properties of weathered granite soil

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Table 4. Result of pull-out test

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Table 5. Applied material properties to numerical analysis

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Table 6. Application of effective diameter

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Table 7. Result of sensitivity analysis using TALREN 5

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References

  1. Chun, B. S. and Lim, H. S. (1999), Soil nailing, Yourim, Korea, pp.289-303.
  2. FHWA (2003), Soil Nail Walls, Geotechnical Engineering Circular No. 7, Report FHWA0-IF-03-017, Federal Highway Administration, Washington, D.C., USA.
  3. Hobst, I. L. and Zajic, I. J. (1983), "Anchoring in rock and soil," 2nd Edition., Elsevier Scientific Published, Amstrerdam.
  4. Kim, H. T., Kang, I. K., Kwon, Y. H. and Kim, C. D. (2002), "Estimation of effective diameter and laboratory model tests of pressur-injected grouting," Journal of the Korean Society of Civil Engineers, Vol.22, No.2-C, pp.121-131. (in Korean)
  5. Kim, Y. M., Yun, Y. H., Lee, S. J. and Jeong, S. S. (2011), "Stability analysis for a slope reinforced with pressure grouted soil nails," Journal of Korean Geotechnical Society, Vol.27, No.12, pp.39-53. (in Korean) https://doi.org/10.7843/kgs.2011.27.12.039
  6. Kleyner, L. M. and Krizek, R. J. (1995) "Mathematical model for bore-injected cement grout installations", Journal of Geotechnical Engineerinf Diviwion, ASCE, Vol.121, No.11, pp.782-788. https://doi.org/10.1061/(ASCE)0733-9410(1995)121:11(782)
  7. KS D 3504 (2016), "Steel bars for concrete reinforcement" Korea Standards Association.
  8. Lee, S. W., Kang, S. H. and Yun, K. K. (1999), "Construction of Concrete Pavement Repair Test with Ultra Fast Cement Containing Rapid CSA" Journal of Korean Civil Engineering, Vol.47, No.8, pp.24-30. (in Korean)
  9. Schlosser, F. (1993), "Recommendations Clouterre, 1991 (English Translation)", Federal Higway Adiministration, FHWA-SA-93-026.
  10. Seo, H. J., Park, S. W., Jeong, K. H., Choi, H. S. and Lee, I. M. (2009), "Pullout resistance of Pressurized soil-nailing by cavity expansion theory," Journal of Korean Geosynthetics Society, Vol.25, No.7, pp.35-46. (in Korean).
  11. Seo, J. W. (2012), "Pullout characteristics of post-grouted reinforcement in clay" M.A Thesis, Chungju National University, Korea.
  12. Shim, B. K. (2009), "Ground anchor behavior considering permeation characteristics of pressurized grouting" M.A Thesis, Korea University, Korea, pp.87-88.