참고문헌
- Agarwal, K.B. and Rana, M.K. (1987), "Effect of ground water on settlement of footing in sand", Proceeding of the 9th European Conference on Soil, Mechanics and Foundation Engineering, Dublin, Ireland, Balkema, Rotterdam, the Netherlands, 751-754.
- ASTM-D5778-07 (2007), Standard Test Method for Performing Electronic Friction Cone and Piezocone Penetration Testing of Soils, ASTM International, West Conshohocken, PA, USA.
- Bellotti, R., Bizzi, G. and Ghionna, V. (1982), "Design, construction and use of calibration chamber", In Proceeding of ESOPT II, Balkema, Amsterdam, The Netherlands, 2, 439-446.
- Bergdahl, U., Hult, G. and Ottosson, E. (1985), "Calculation of settlements of footings in sands", Proceeding of the 11th International Conference on Soil, Mechanics and Foundation Engineering, San Francisco, 4, 2167-2170.
- Bowles, J.E. (1996), Foundation analysis and design, (5th Edition), The McGraw-Hill Companies, Inc., N.Y., USA.
- Broms, B.B. (1963), "The effect of degree of saturation on the bearing capacity of flexible pavements", Highway Res. Record, 71, 1-14.
- Costa, Y.D., Cintra, J.C. and Zornberg, J.C. (2003), "Influence of matric suction on the results of plate load tests performed on a lateritic soil deposit", Geotech. Testing J., 26(2), 219-226.
- Das, B.M. and Sivakugan, N. (2007), "Settlement of shallow foundations on granular soil - an overview", Int. J. Geotech. Eng., 1(1), 19-29. https://doi.org/10.3328/IJGE.2007.01.01.19-29
- Giddens, R. and Briaud, J.L. (1994), "Load tests on five large spread footings on sand and evaluation of prediction methods", Report to the Federal Highway Administration Department of Civil Engineering, A&M University, USA.
- Houlsby, G.T. and Hitchman, R. (1988), "Calibration chamber tests of a cone penetrometer in sand", Geotechnique, 38(1), 39-44. https://doi.org/10.1680/geot.1988.38.1.39
- Hryciw, R.D. and Dowding, C.H. (1987), "Cone penetration of partially saturated sands", Geotech. Testing J., GTJODJJ, 10(3), 135-141. https://doi.org/10.1520/GTJ10945J
- Iwasaki, K., Tanizawa, F., Zhou, I. and Tatsuoka, F. (1988), "Cone penetration and liquefaction strength of sand", Penetration Testing, ISOPT-1, De Rutter, Balkema, Rotterdam, 785-791.
- Lee, J. and Salgado, R. (2002), "Estimation of footing settlement in sand", Int. J. Geomech., 1(2), 1-28.
- Lunne, T., Robertson, P.K. and Powell, J.M. (1997), "Cone penetration testing in geotechnical practice", Blackie Academic and Professional, London, UK.
- Mayne, P. and Illingworth, F. (2010), "Direct CPT method for footing response in sands using a database approach", The 2nd International Symposium on Cone Penetration Testing, Huntington Beach, CA, USA.
- Meyerhof, G. (1956), "Penetration tests and bearing capacity of cohesionless soils", J. Soil Mech. Found. Div., ASCE, 82(1), 1-19.
- Meyerhof, G. (1974), "Penetration testing in countries out-side Europe", Proceeding of the European Symposium on Penetration Testing, 2(1), 40-48.
- Miller, G.A., Muraleetharan, K.K., Tan, N.K. and Lauder, D.R. (2002), "A calibration chamber for unsaturated soil testing", Proceeding of the 3rd International Conference on Unsaturated Soils, UNSAT 2002, Balkema, Lisse, 2, 453-457.
- Mohamed, F.M.O. and Vanapalli, S.K. (2006), "Laboratory investigations for the measurement of the bearing capacity of an unsaturated coarse-grained soil", Proceeding of the 59th Canadian Geotechnical Conference, Vancouver, Canada, Canadian Geotechnical Society, Richmond, B.C., 1, 219-226.
- Oh, W.T. and Vanapalli, S.K. (2011), "Modeling the applied vertical stress and settlement relationship of shallow foundation in saturated and unsaturated sands", Can. Geotech. J., 48, 425-438. https://doi.org/10.1139/T10-079
- Oloo, S.Y., Fredlund, D.G. and Gan, J. (1997), "Bearing capacity of unpaved roads", Can. Geotech. J., 34(3), 398-407. https://doi.org/10.1139/t96-084
- Parkin, A.K. (1988), "The calibration of cone penetrometers", Proceeding of the 1st International Symposium on Penetration Testing (ISOPT-1), Orland, FL, USA.
- Poulos, H.G. and Davis, E.H. (1974), Elastic Solutions for Soil and Rock Mechanics, John Wiley and Sons, New York.
- Pournaghiazar, M., Russell, A.R. and Khalili, N. (2012), "The cone penetration test in unsaturated sands", Geotechnique, (Accepted: In press).
- Robertson, P.K. (2009), "Interpretation of cone penetration tests - A unified approach", Canadian Geotech. J., 46(11), 1337-1355. https://doi.org/10.1139/T09-065
- Robertson, P.K. and Campanella, R.G. (1983), "Interpretation of cone penetration resistance tests, Part I, sand", Can. Geotech. J., 20(4), 718-733. https://doi.org/10.1139/t83-078
- Robertson, P.K. and Campanella, R.G. (1986), "Liquefaction potential of sands using the CPT", J. Geotech. Eng., ASCE, 3(3), 384-403.
- Robertson, P.K. and Cabal, K.L. (2010), "Guide to penetration testing for geotechnical engineering", (4th Edition), Gregg Drilling and Testing, Inc., Signal Hill, CA, USA.
- Russell, A.R. and Khalili, N. (2006), "On the problem of cavity expansion in unsaturated soils", Computational Mech., 37(4), 311-330. https://doi.org/10.1007/s00466-005-0672-7
- Salgado, R., Mitchell, J.K. and Jamiolkowski, M. (1998), "Calibration chamber size effects on penetration resistance in sand", J. Geotech. Geoenviron. Eng., ASCE, 124(9), 878-888. https://doi.org/10.1061/(ASCE)1090-0241(1998)124:9(878)
- Schmertmann, J.H. (1976), "An updated correlation between relative density Dr and Fugro-Type electric friction cone bearing qc", DACW 39-76, Waterways Experiment Station, USA.
- Schmertmann, J., Hartman, J. and Brown, P.R. (1978), "Improved strain influence factor diagrams", J. Geotech. Eng. Div., ASCE, 104(8), 1131-1135.
- Schnaid, F. and Houlsby, G. (1991), "An assessment of chamber size effects in the calibration of in-situ tests in sand", Geotechnique, 41(3), 437-445. https://doi.org/10.1680/geot.1991.41.3.437
- Steensen-Bach, J.O., Foged, N. and Steenfelt, J.S. (1987), "Capillary induced stresses - fact or fiction?", 9th ECSMFE, Groundwater Effects in Geotechnical Engineering, Dublin, Ireland, 83-89.
- Swamy, H.M., Krishnamoorthy, A., Prabakhara, D.L. and Bhavikatti, S.S. (2011), "Evaluation of the influence of interface elements for structure ? isolated footing - soil interaction analysis", Interact. Multisc. Mech., Int. J., 4(1), 65-83. https://doi.org/10.12989/imm.2011.4.1.065
- Terzaghi, K. and Peck, R.B. (1967), Soil Mechanics in Engineering Practice, (2nd Edition), Wiley, New York.
- Vanapalli, S.K., Fredlund, D.G., Pufahl, D.E. and Clifton, A.W. (1996), "Model for the prediction of shear strength with respect to soil suction", Can. Geotech. J., 33(3), 379-392. https://doi.org/10.1139/t96-060
- Vanapalli, S.K. (2009), "Shear strength of unsaturated soils and its applications in geotechnical engineering practice", Keynote Address, Proceeding of the 4th Asia-Pacific Conference on Unsaturated Soils, N.C., Australia, 579-598.
- Vesic, A.S. (1970), "Tests on instrumented piles, Ogeechee River site", J. Soil Mech. Found. Div., ASCE, 96(2), 561-584.
피인용 문헌
- Behavior of Sand After a High Number of Cycles Application to Shallow Foundation vol.14, pp.7, 2016, https://doi.org/10.1007/s40999-016-0050-1
- High-rise building subjected to excessive settlement of its foundation: a case study vol.8, pp.2, 2017, https://doi.org/10.1108/IJSI-05-2016-0019
- Treatment of the High Number of Cycles as a Pseudo-Cyclic Creep by Analogy with the Soft Soil Creep Model vol.34, pp.6, 2016, https://doi.org/10.1007/s10706-016-0078-7
- Experimental and finite element analyses of footings of varying shapes on sand vol.12, pp.2, 2013, https://doi.org/10.12989/gae.2017.12.2.223
- Research on the Grey Verhulst Model Based on Particle Swarm Optimization and Markov Chain to Predict the Settlement of High Fill Subgrade in Xiangli Expressway vol.2019, pp.None, 2013, https://doi.org/10.1155/2019/1878296
- Footing settlement formula based on multi-variable regression analyses vol.17, pp.1, 2019, https://doi.org/10.12989/gae.2019.17.1.011
- Shear infiltration and constant water content tests on unsaturated soils vol.19, pp.5, 2013, https://doi.org/10.12989/gae.2019.19.5.435