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대형직접전단시험을 이용한 조립재료의 전단거동 특성 (III) - 최종 종합 분석 -

Characteristics of Shear Behavior for Coarse Grained Materials Based on Large Scale Direct Shear Test (III) - Final Comprehensive Analysis -

  • 발행 : 2009.04.30

초록

대형직접전단시험기를 이용하여, 국내의 석산에서 생산된 쇄석재료들에 대한 전단거동을 분석하였다. 시료별로 전단강도를 산출하였으며, 최대입경, 수침조건, 밀도, 균등계수, 파쇄율 등의 변화에 따른 전단거동의 영향을 평가하여, 선행연구결과와 정성적으로 비교하였다. 아울러, 일의 원리를 응용하여, 쇄석재료의 응력-다일러턴시 관계를 규명하였으며, 한계상태의 마찰계수와 첨두마찰각 및 팽창각을 산출하였다. 실험결과 일축압축강도와 파쇄율이 쇄석의 내부마찰각에 가장 결정적인 영향을 미치며, 파괴시 다일러턴시도 연관성이 높은 것으로 밝혀졌다.

Large scale direct shear tests were carried out to analyze the shear behavior of crushed rocks at local representative quarries. Shear strength for each specimen was derived and the effects on shear behavior induced by the variation of factors such as particle size, water immersion, density, uniformity coefficient, and particle breakage were evaluated and quantitatively compared with previous studies. The opportunity was also taken to identify stress-dilatancy relation of crushed rocks following the energy-based theory and friction coefficients at critical state as well as peak friction angles and dilation angles were estimated. As a result of tests it was found that uniaxial compressive strength and particle breakage of the parent rocks have crucial effect on internal friction angles; in addition, dilatancy at the failure showed strong relationship as well.

키워드

참고문헌

  1. 산업자원부 (2005), 구조물 단면절감을 위한 조립질 토목재료 변형특성 연구, 최종보고서, R-2002-0-172
  2. 이대수, 김경열, 홍성연, 조화경, 황성춘 (2005), "대형직접전단시험을 이용한 조립재료의 전단거동 특성(I)", 한국지반공학회 논문집, 제21권 제6호, pp.81-91
  3. 이대수, 김경열, 홍성연, 황성춘 (2006), "대형직접전단시험을 이용한 조립재료의 전단거동 특성(II)", 한국지반공학회 논문집, 제22권 제4호, pp.51-60
  4. 정철민, 김종수, 채영수 (2002), "대형삼축압축시험을 이용한 북제주 현무암 사석재의 강도정수 및 전단강도", 한국지반공학회논문집, 제18권 제2호, pp.81-91
  5. 한국수자원공사 (1999), 댐축조용 조립재료의 대형전단시험 표준화방안 연구, 최종보고서, WRRI-GT-99-3
  6. 한국수자원공사 (2001), 대형삼축기를 이용한 댐재료의 전단강도 특성 연구, 최종보고서, WRRI-GT-01-2
  7. 홍성연, 김경열, 이대수 (2004), "조립재료의 변형 및 강도특성에 대하여 - 대형일면전단시험기 개발-", 2004 대한토목학회 추계학술발표회지, pp.2362-2365
  8. 日本土質工學會 (1986), "組立材料の 變形と强度", (일본어)
  9. Barton, N. and Kjærnsli, B. (1981), "Shear Strength of Rockfill", J. of Geotech. Eng., ASCE, Vol.107, No.GT7, pp.873-891
  10. Bishop, A.W. (1966), "The Strength of Soils As Engineering Materials", Geotechnique, 16(2), pp.91-130 https://doi.org/10.1680/geot.1966.16.2.91
  11. Dittes, M., Labuz, J.F. (2002), "Field and Laboratory Testing of St. Peter Sandstone", J. of Geotech. and Geoenviron. Eng., ASCE, Vol.128, No.5, pp.372-380
  12. Gupta, K.K. and Ramamurthy, T. (1978), "Prediction of the Behaviour of Rockfill Materials", Proc. of Geotech. Conf. GEOCON-India, New Delhi, Vol.1, pp.25-31
  13. Fumagalli, E. (1969), "Tests on Cohesionless Materials for Rockfill Dams", J. of Soil Mechanics and Found. Div., ASCE, Vol.95, No.SM1, Proc. Paper 6353, Jan., pp.313-332djqt
  14. Hardin, B.O. (1985), "Crushing of Soil Particles", J. of Geotech. Eng., ASCE, Vol.111, No.10, pp.1177-1192 https://doi.org/10.1061/(ASCE)0733-9410(1985)111:10(1177)
  15. Lade, P.V. (1996), "Significance of Particle Crushing in Granular Marerials", J. of Geotech. Eng., ASCE, Vol.122, No.4, pp.309-31 https://doi.org/10.1061/(ASCE)0733-9410(1996)122:4(309)
  16. Lambe, T.W., and Whitman, R.V. (1969), "Soil Mechanics", John Wiley & Sons, New York
  17. Leps, T.M. (1970), "Review of Shearing Strength of Rockfill", Proc. of ASCE, Vol.96, No.SM4, pp.1159-1170
  18. Leslie, D.D. (1963), "Large Scale Triaxial Tests on Gravelly Soils", Proc. 2nd Pan-American Conf. of Soil Mech. Found. Eng. Vol.1, Sao Paulo, pp.181-202
  19. Lowe, J. (1964), "Shear Strength of Coarse Embankment Dam Materials", Proc. 8th Congress on Large Dams, pp.745-761
  20. Marachi, N.D., Chan, C.K., and Seed, H.B. (1972), "Evaluation of Properties of Rockfill Materials", J. of Soil Mech. And Found. Div., ASCE, Vol.98, No.SM1, Jan, 1972. pp.95-114
  21. Marsal, R.J. (1967), "Large Scale Testing of Rockfill Materials", J. of Soil Mech. And Found. Div., ASCE, 93(2), pp.27-43
  22. Marsal, R.J. (1973), "Mechanical Properties of Rockfill in Embankment Dam engineering", Casagrande Volume, John Wiley & Sons, New York, pp.109-200
  23. Matsuoka, H., Liu, S., Sun, D., and Nishikata, U. (2001), "Development of a New In-Situ Direct Shear Test"" Geotech. Testing J., American Society for Testing and Materials, Vol.24, No.1. pp.92-102 https://doi.org/10.1520/GTJ11285J
  24. Rowe, P.W. (1962), "The Stress-dilatancey Relation for Static Equilibrium of an Assembly of Particles in Contact", Proc. Roy. Soc. London, Vol.269, 500-27 https://doi.org/10.1098/rspa.1962.0193
  25. Saboya Jr, F. and Byrne P.M. (1993), "Parameters for Stress and Deformation Analysis of Rockfill Dams", Can. Geotech. J., Vol.30, pp.690-701 https://doi.org/10.1139/t93-058
  26. Taylor, D.W. (1948), "Fundamentals of Soil Mechanics", Wiley, New York
  27. Tombs, J.A. (1969), "Strength and Deformation Characteristics of Rockfill", Ph.D. Thesis, University of London, London, U.K
  28. Varadarajan, A., Sharma, K.G., Venkatachalam, K. and Gupta, A.K. (2003), "Testing and Modeling Two Rockfill Materials", J. of Geotech. and Geoen. Eng., ASCE, Vol.129, No.3, pp.206-218 https://doi.org/10.1061/(ASCE)1090-0241(2003)129:3(206)
  29. Wood, D.M. (1990), "Soil Behaviour and Critical State Soil Mechanics", Cambridge University Press
  30. Yamamuro, J.A. and Lade, P.V. (1996), "Drained Sand Behavior in Axisymmetric Tests at High Pressures", J. of Geotech. Eng., ASCE, Vol.122, No.2, pp.109-119 https://doi.org/10.1061/(ASCE)0733-9410(1996)122:2(109)
  31. Zeller, J., and Wullimann, R. (1957), "The Shear Strength of the Shell Materials for the Goschenenalp Dam, Switzerland", Proc., 4th Conference of Soil Mechanics and Found. Eng., Vol.2, pp.399-40
  32. Zingg, T. (1935), "Beitrag Zur schotteranalyse", S. Min. Pentrol. Mitt, 15. pp.5-25 https://doi.org/10.3929/ethz-a-000103455