참고문헌
- ASTM D3080 (1998), "Standard Test Method for Direct Shear Test of Soils under Consolidated Drained Conditions", American Society of Testing and Materials.
- ASTM D422 (2001), "Standard Test Method for Particle Size-Analysis of Soils", American Society of Testing and Material.
- ASTM D4253 (2000), "Standard Test Method for Maximum Index Density and Unit Weight of Soils Using a Vibratory Table", American Society of Testing and Materials.
- ASTM D4254 (2000), "Standard Test Method for Minimum Index Density and Unit Weight of Soils and Calculation of Relative Density", American Society of Testing and Materials.
- ASTM D854 (2005), "Standard Test Method for Specific Gravity of Soil Solids by Water Pycnometer", American Society of Testing and Materials.
- Bieganousky, W.N. and Marcuson, W.F. (1976), "Uniform placement of sand", J. Geotech. Eng. Div., ASCE, 102(3), 229-233.
- Burland, J.B., Broms, B.B. and de Mello, V.F.B. (1977), "Behaviour of foundations and structures", Proc. 9th ICSMFE, Tokyo, 2, 495-546.
- Chin, F.K. (1970), "Estimation of the ultimate load of piles not carried to failure", Proceedings of the 2nd Southeast Asian Conference on Soil Engineering, 81-90.
- Cox, W.R., Dixon, D.A. and Murphy, B.S. (1984), "Lateral-Load Tests on 25.4-mm (1-in.) Diameter Piles in Very Soft Clay in Side-by-Side and in-Line Groups", Laterally Loaded Deep Foundations: Analysis and Performance, ASTM STP 835, 122-139.
- Davis, E.H. and Poulos, H.G. (1972), "Rate of settlement under two-and three-dimensional conditions", Geotechnique, 22(1), 95-114. https://doi.org/10.1680/geot.1972.22.1.95
- Davisson, M.T. (1972), "High capacity piles", Proceedings of Lecture Series on Innovations in Engineering Construction, ASCE Illinois section, Chicago, March.
- DeBeer, E.E. (1968), "Proefondervindlijke bijdrage tot de studie van het grensdraag vermogen van zand onder funderingen op staal", Tijdshift der Openbar Verken van Belgie, No. 6, 1967 and No. 4, 5, and 6, 1968, cited by Fellenius 2009.
- Fellenius, B.H. (2009), Basics of Foundation Design, Book Electronic.
- Hansen, B. (1970), A Revised and Extended Formula for Bearing Capacity, Bulletin of the Danish Geotechnical Institute, Copenhagen, No. 28.
- Hartmann, F. and Jahn, P. (2001), Boundary Element Analysis of Raft Foundations on Piles, Kluwer Academic Publishers, Netherlands.
- Hooper, J.A. (1973), "Observations on the behaviour of a piled raft foundation in London clay", Proceeding of Institution of Civil Engineers, 55(2), 855-877. https://doi.org/10.1680/iicep.1973.4144
- Katzenbach, R. and Reul, O. (1997), "Design and performance of piled rafts", Proceeding XIVth ICSMFE, Hamburg, 4, 2253-2256.
- Mandolini, A., Russo, G. and Viggiani, C. (2005), "Pile foundations: experimental investigations", Proc. XVI ICSMGE, 1, Osaka, Japan.
- Prakoso, W.A. and Kulhawy, F.H. (2001), "Contribution to Piled Raft Foundation Design", J. Geotech. Geoenviron. Eng., ASCE, 127(1), 17-24. https://doi.org/10.1061/(ASCE)1090-0241(2001)127:1(17)
- Randolph, M.F. (1994), "Design methods for pile groups and piled rafts", Proc. 13th Int. Conf. on Soil Mechanics and Foundation Engineering, Int. Society for Soil Mechanics and Foundation Engineering, 5, 61-82.
- Reul, O. (2004), "Numerical study of the bearing behaviour of piled rafts", Int. J. Geomech., ASCE, 4(2), 59-68. https://doi.org/10.1061/(ASCE)1532-3641(2004)4:2(59)
- Reul, O. and Randolph, M.F. (2003), "Piled rafts in overconsolidated clay: comparison of in situ measurements and numerical analysis", Geotechnique, 53(3), 301-315. https://doi.org/10.1680/geot.2003.53.3.301
- Russo, G. (1998), "Numerical analysis of piled rafts", Int. J. Numer. Anal. Meth. Geomech., 22(6), 477-493. https://doi.org/10.1002/(SICI)1096-9853(199806)22:6<477::AID-NAG931>3.0.CO;2-H
- Sanctis, L. and Russo, G. (2008), "Analysis and performance of piled rafts designed using innovative criteria", J. Geotech. Geoenviron. Eng., ASCE, 134(8), 1118-1128. https://doi.org/10.1061/(ASCE)1090-0241(2008)134:8(1118)
- Shelke, A. and Patra, N.R. (2008), "Effect of arching on uplift capacity of pile groups in sand", Int. J. Geomech., ASCE, 8(6), 347-354. https://doi.org/10.1061/(ASCE)1532-3641(2008)8:6(347)
- Small J.C. and Liu L.S. (2008), "Time-settlement behaviour of piled raft foundations using infinite elements", Comput. Geotech., 35, 187-195. https://doi.org/10.1016/j.compgeo.2007.04.004
- Su, Q., Mayao, C., Bin, W. and Bai, H. (2011), "The load sharing and it's time effect of the piled raft foundation under high embankment", ICTE 2011, ASCE, 1396-1402.
- Turner, J.P. and Kulhawy, F.H. (1987), "Experimental analysis of drilled foundations subjected to repeated axial loads under drained conditions", Report EL-5325, Electric Power Research Institute, Palo Alto, California.
- Winterkorn, H.F. and Fang, H.Y. (1975), Foundation Engineering Hand Book, Van Nostrand Reinhold Company, New York.
- Yilmaz, B. (2010), "An analytical and experimental study on piled raft foundations", MSc. Thesis, Middle East Technical University, Ankara.
- Xia, R., Doleze, V., Rak, L., Qian, H. and Rao, B. (2009), "Geotechnical design of a partially piled raft foundation", International Foundation Congress and Equipment, ASCE, 223-230.
- Zeevaert, L. (1957) "Compensated friction-pile foundation to reduce the settlement of buildings on highly compressible volcanic clay of Mexico City", Proc. 4th ICSMFE, London.
- Zhang, U., Zhang, X., Ma, Y., Zhang, X. and Yang, S. (2014), "Large-scale pilot test study on bearing capacity of sea- crossing bridge main pier pile foundations", Geomech. Eng., 7(2), 201-2012. https://doi.org/10.12989/gae.2014.7.2.201
피인용 문헌
- Behavior of piled rafts overlying a tunnel in sandy soil vol.10, pp.5, 2016, https://doi.org/10.12989/gae.2016.10.5.599
- Numerical investigations of pile load distribution in pile group foundation subjected to vertical load and large moment vol.10, pp.5, 2016, https://doi.org/10.12989/gae.2016.10.5.577
- Numerical comparison of bearing capacity of tapered pile groups using 3D FEM vol.9, pp.5, 2015, https://doi.org/10.12989/gae.2015.9.5.547
- Numerical modelling of a pile-supported embankment using variable inertia piles vol.61, pp.2, 2015, https://doi.org/10.12989/sem.2017.61.2.245
- Numerical and Theoretical Study on the Settlement of Capped Piles Composite Foundation under Embankment vol.2020, pp.None, 2015, https://doi.org/10.1155/2020/3978780
- Study on large tonnage pile foundation load test system and field test of long rock-socketed pile vol.21, pp.6, 2020, https://doi.org/10.12989/gae.2020.21.6.565
- KAZIKLI RADYE TEMEL SİSTEMİNDE TEMEL-ZEMİN ETKİLEŞİMİNİN YAPISAL DAVRANIŞ ÜZERİNE ETKİSİ vol.26, pp.2, 2015, https://doi.org/10.17482/uumfd.850730
- Plate load tests to analyze the load-settlement response of shallow foundations on sand beds reinforced with micropiles vol.28, pp.47, 2015, https://doi.org/10.1007/s11356-021-15390-4