A Damage Model for Predicting the Nonlinear Behavior of Rock

암석의 비선형 거동해석을 위한 손상모델 개발

  • 장수호 (대원토질(주)) ;
  • 이정인 (서울대학교 지구환경시스템 공학부) ;
  • 이연규 (군산대학교 해양응용공학부)
  • Published : 2002.10.01

Abstract

An experimental model which considers post-peak behaviors and pre-peak damage characteristics representing changes of elastic moduli in each damage level was developed. From experiments, some damage thresholds of rocks were determined, and regression analyses were carried out in order to represent changes of elastic moduli in each damage level as functions of confining pressure. In addition, it was intended to simulate post-peak behaviors with Hoek-Brown constants, $m_r\;and\;s_r$ for post-failure. The developed experimental model was implemented into $FLAC^{2D}$ by a FISH function. From results of parametric studies on Hoek-Brown constants for post-peak, it was revealed that uniaxial compressive strength more highly depends upon $s_r$, although it depends on both $m_r\;and\;s_r$. It was also shown that the post-peak slopes of stress-stain curves depend mainly on $m_r$. When the optimum models obtained from parametric studies were applied to numerical analysis, they predicted maximum strengths obtained from experiments and well simulated stiffness changes due to damage levels.

본 연구에서는 암석의 최대강도 이전의 각 손상단계에서 탄성정수의 변화로 나타나는 손상특성과 최대강도 후거동을 고려할 수 있는 손상모델을 실험적으로 개발하였다. 일축 및 삼축압축실험 결과를 토대로 암석의 손상기준을 결정하였고, 각 손상단계에서 탄성정수의 변화를 구속압의 함수로 최적화시켰다. 또한 최대강도 후 Hoek-Brown상수 mr과 sr을 이용하여 최대강도 후 거동을 모사하였다. 개발된 실험 손상모델을FLAC$^{2D}$의 FISH 함수로 구현하여 수치해석을 실시하였다. Hoek-Brown 최대강도 후 상수들이 해석결과에 미치는 영향을 분석한 결과, 일축압축강도는 mr과 sr 모두에 의해 영향을 받으나 5,에 의해 더 크게 좌우되는 것으로 나타났다. 반면 m,은 최대강도 후의 응력-변형률 곡선의 기울기에 큰 영향을 끼치는 것으로 나타났다. 분석으로부터 얻어진 최적 손상모델을 수치해석에 적용한 결과 실험실 시험으로부터 얻어진 최대 강도와 암석의 손상에 따른 강성 변화를 잘 예측하였다.다.

Keywords

References

  1. 서울대학교 석사학위논문 미소파괴음 측정과 결합입자모델 해석에 의한 암석의 변형파괴 윤경진
  2. 서울대학교 박사학위논문 삼축 압축 하에서 암석의 미소파괴음 측정과 변형 파괴 특성 허종석
  3. Ph.D. dissertation, Queen's University Unstable and Violent Failure around Underground Openings in Highly Stressed Ground Aglawe, J.P.
  4. Int. J. Rock Mech. Min. Sci. & Geomech. Abstr. v.35 no.2 Experimental Procedures to Measure Volumetric Changes and Microseismic Activity During Triaxial Compression Tests Butt, S.D.;Calder, P.N. https://doi.org/10.1016/S0148-9062(97)00325-2
  5. Ph.D. dissertation, University of Toronto Analysis of Stress-induced Damage Initiation around Deep Openings Excavated in a Moderately Jointed Brittle Rock Mass Castro, L.A.M.
  6. Geosystem Engineering v.4 no.1 Damage and Fracture Characteristics of Kimachi Sandstone in Uniaxial compression Chang, Soo-Ho;Seto, Masahiro;Lee, Chung In https://doi.org/10.1080/12269328.2001.10541163
  7. Int. J. Rock Mech. Min. Sci. v.36 no.3 Quantifying Progressive Pre-peak Brittle Fracture Damage in Rock During Uniaxial Compression Eberhardt, E.;Stead, D.;Stimpson, B. https://doi.org/10.1016/S0148-9062(99)00019-4
  8. Ph.D. dissertation, University of London A Local Degradation Approach to the Numerical Analysis of Brittle Fracture in Heterogenesous Rocks Fang, Z.
  9. Engineering Behaviour of Rocks (2nd ed.) Farmer, Ian
  10. Underground Excavations in Rock Hoek, E.;Brown, E.T.
  11. Int. J. Rock Mech. Min. Sci. & Geomech. Abstr. v.27 no.3 Estimating Mohr-Coulomb Friction and Cohesion Values from the Hoek-Brown Failure Criterion Hoek. E. https://doi.org/10.1016/0148-9062(90)94333-O
  12. Support of Underground Excavations in Hard Rock Hoek, E.;Kaiser, P.K.;Bawden, W.F.
  13. Int. J. Rock Mech. Min. Sci. v.34 no.8 Practical Estimates of Rock Mass Strength Hoek, E.;Brown, E.T. https://doi.org/10.1016/S1365-1609(97)80069-X
  14. FLAC Version 3.3 Volume I: User's Manual Itasca Consulting Group
  15. Proc. of Computer Methods and Advances in Geomechanics Micro-Mechanical Analysis of Excavation Disturbed Zones Around Tunnels Konietzky, H.;Kamp, L.te;Blumling, P.;Mayor, J.C.
  16. Damage Mechanics Krajcinovic, D.
  17. Engineering Fracture Mechanics v.37 no.1 Criteria for brittle fracture in compression Lajtai, E.Z.;Carter, B.J.;Ayari, M.L. https://doi.org/10.1016/0013-7944(90)90331-A
  18. Ph.D. dissertation, University of Manitoba The Strength of Massive Lac du Bonnet Granite Around Underground Openings Martin, C.D.
  19. Int. J. Rock Mech. Min. Sci. v.31 no.6 The Progressive Fracture of Lac du Bonnet Granite Martin, C.D.;Chandler, N.A. https://doi.org/10.1016/0148-9062(94)90005-1
  20. Int. J. Rock Mech. Min. Sci. v.37 no.8 The Strength of Hard-rock Pillars Martin, C.D.;Maybee, W.G. https://doi.org/10.1016/S1365-1609(00)00032-0
  21. Rock Mech. Rock Engng. v.28 no.4 Modelling of Damaged Zones Around Openings Using Radius-Dependent Young's Modulus Nawrocki, P.A.;Dusseault, M.B. https://doi.org/10.1007/BF01020228
  22. Proc. of 2nd North American Rock Mechanics Symposium Modeling of Rock Using Bonded Assemblies of Circular Particles Potyondy, D.O.;Cundall, P.A.;Lee, C.A.
  23. Int. J. Rock Mech. Min. Sci. v.35 no.4-5 Modeling Notch-Formation Mechanisms in the URL Mine-by Test Tunnel Using Bonded Assemblies of Circular Particles Potyondy, D.O.;Cundall, P.A.
  24. Int. J. Rock Mech. Min. Sci. v.37 Numerical studies of the influence of microstructure on rock failure in uniaxial compression - part I: effect of heterogeneity Tang, C.;Liu, H.;Lee, P.K.K.;Tsui, Y.;Tham, L.G. https://doi.org/10.1016/S1365-1609(99)00121-5