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2019 Vol.35, Issue 7 Preview Page

Research Article

31 July 2019. pp. 15-27
Abstract
References
1
Shin, W.K. (2003), "Estimation of Dynamic Lateral Displacement of Caisson Quay Walls with Effective Stress Analyses for Moderate Earthquake Loading", Master Thesis, Yeonsei University.
2
Ahn, J.K., Baek, W.H., Choi, J.S., and Kwak, D.Y. (2018), "Investigation of Pohang Earthquake Liquefaction Using 1D Effective-Stress Site Response Analysis", Journal of the Korean Geotechnical Society, Vol.34, No.8, pp.37-49.
3
Casagrande, A. (1936), "Characteristics of Cohesionless Soil Affecting the Stability of Slopes and Earth Fills", J. Boston Society of Civil Engineering, reprinted in contribution to soil mechanics 1925-1940, pp.257-276.
4
Elgamal, A., Yang, Z., Parra, E., and Ragheb, A. (2003), "Modeling of Cyclic Mobility in Saturated Cohesionless Soils", International Journal of Plasticity, Vol.19, No.6, pp.883-905.
10.1016/S0749-6419(02)00010-4
5
Iai, S., Matsunaga, Y., and Kameoka, T. (1992a), "Strain Space Plasticity Model for Cyclic Mobility", Soils and Foundations, Vol.32, No.2, pp.1-15.
10.3208/sandf1972.32.2_1
6
Iai, S., Matsunaga, Y., and Kameoka, T. (1992b), "Analysis of Undrained Cyclic behavior of Sand under Anisotropic Consolidation", Soils and Foundations, Vol.32, No.2, pp.16-20.
10.3208/sandf1972.32.2_16
7
Iai, S. (2000), Seismic Design Guidelines for Port Structures, A.A. Balkema Publishers.
8
Ishihara, K. and Towhata, I. (1980), "One-dimensional Soil Response Analysis during Earthquakes based on Effective Stress Analysis", Journal of the faculty of engineering, The University of Tokyo (B), Vol.XXXV, No.4, pp.655-700.
9
Kang, G.-C., Yun, S.-K., Kim, T.-H., and Kim, D.-S. (2013), "Numerical Analysis on Settlement Behavior of Seabed Sand-Coastal Structure Subjected to Wave Loads", Journal of Korean Society of Coastal and Ocean Engineers, Vol.25, No.1, pp.20-27.
10.9765/KSCOE.2013.25.1.20
10
Kang, G.-C., Tobita, T., and Iai, S. (2014), "Seismic Simulation of Liquefaction-induced Uplift behavior of Ahollow Cylinder Structure Buried in Shallow Ground", Soil Dynamics and Earthquake Engineering, Vol. 64, pp.85-94.
10.1016/j.soildyn.2014.05.006
11
KDPA (2010), "Lessons from Indonesia's Repetitive Tsunami", Disaster Prevention Journal, Vol.12, No.4, pp.32-36.
12
Lee, J.S. and Noh, G.D. (2016), "Evaluation of Caisson Quay Wall Behavior during the 1995 Kobe Earthquake by Nonlinear Effective Stress Analysis", Journal of Earthquake Engineering Society of Korea, Vol.20, No.6, pp.401-412.
10.5000/EESK.2016.20.6.401
13
Lee, H. and Kim, E., (2011), "Damage Recovery in Japan after the East Japan Earthquake", World Econony Update, Vol.11, No.22, pp.1-14.
14
Martin, G. R., Finn, W. D. L., and Seed, H. B. (1975), "Fundamentals of Liquefaction under Cyclic Loading", Journal of Geotechnical Engineering, ASCE, Vol.101, No.5, pp.423-438.
15
Mun, G. Y. (2018), A Study on the Effect of Relative Density and Particle Size Distribution on the Liquefaction Resistance Strength of Sand in Pohang Liquefaction Region, Master thesis, Pusan National University.
16
Morita, T., Iai, S., Liu, H., Ichii, K., and Sato, Y. (1997), "Simplified Method to Determine Parameter of FLIP", Technical Note of the Port and Harbor Research Institute, No.869, pp.1-36.
17
Oka, F., Yashima, A., Tateishi, Y., Taguchi, Y., and Yamashita, S. (1999), "A Cyclic Elasto-plastic Constitutive Model for Sand Considering a Plastic-strain Dependence of the Shear Modulus", Geotechnique, Vol.49, No.5, pp.661-680.
10.1680/geot.1999.49.5.661
18
Ozutsumi, O., Sawada, S., Iai, S., Takeshima, Y., Sugiyama, W., aned Shimasu, T. (2002), "Effective Stress Analyses of Liquefaction-induced Deformation in River Dikes", Journal of Soil Dynamics and Earthquake Engineering, Vol.22, pp.1075-1082.
10.1016/S0267-7261(02)00133-1
19
Park, D. and Kwak, D.Y. (2009), "Evaluation of Liquefaction Potential with Simplified Method and Effective-Stress Site Response Analysis", Journal of the Korean Geotechnical Society, Vol.25, No.3, pp.75-82.
20
Park, S.S. (2008), "Liquefaction Evaluation of Reclaimed Sites using and Effective Stress Analysis and an Equivalent Linear Analysis", Journal of Korea Society of Civil Engineering, Vol.28, No.2C, pp.83-94.
21
Park, S.-S., Nong, Z., Choi, S.-G., and Moon, H.-D. (2018), "Resistance of Pohang Sand", Journal of the Korean Geotechnical Society, Vol.34, No.9, pp.5-17.
22
Sawada, S., Ozutsumi, O., and Iai, S. (2000), "Analysis of Liquefaction Induced Residual Deformation for Two Types of Quay Walls: Analysis by FLIP", Proceedings of the 12th World Conference on Earthquake Engineering (Auckland), No.2486.
23
Seed, H.B. and Idriss, I.M. (1967), "Analysis of Soil Liquefaction :Niigata Earthquake", JSMFD, ASCE, Vol.93, No.SM3, pp.83-108.
24
Seed, H.B. and Idriss, I.M. (1971), "Simplified Procedure for Evaluating Soil Liquefaction Potential", Journal of the Soil Mechanics and Foundations Division, 97, pp.1249-1273.
25
Seed, H.B., Lee, K.L., Idriss, I.M., and Makdisi, F.I. (1975), "The Slides in the San Fernando Dams during the Earthquake of February 9, 1971", Journal of the Geotechnical Engineering Division, 101, pp.651-688.
26
Sugano, T., Nozu, A., Koham, E., Shimosako, K., and Kikuchi, Y. (2014), "Damage to coastal structures", Soils and Foundations, Vol.54, No.4, pp.883-901.
10.1016/j.sandf.2014.06.018
27
Stark, T.D. and Olson, S.M. (1995), "Liquefaction Resistance Using CPT and Field Case Histories", J. of Geotech. Eng., Vol.121, No.12, pp.856-869.
10.1061/(ASCE)0733-9410(1995)121:12(856)
28
Tokimatsu, K. and Yoshimi, Y. (1983), "Empirical Corrlation of Soil Liquefaction based on SPT N-value and Fines Content", Soils and Foundations, Vol.23, No.4, pp.56-74.
10.3208/sandf1972.23.4_56
29
Youd, T.L., Idriss, I.M., Andrus, R.D., Arango, I., Castro, G, Christian, J.T., Dobry, R., Finn, W.D.L., Harder Jr., L.F., Hynes, M.E., Ishihara, K., Koester, J.P., Liao, S., Marcuson Ш, W.F., Martin, G.R., Mitchell, J.K., Moriwaki, Y., Power, M.S., Robertson, P.K., Seed, R.B., and Stokoe, K.H. (2001), "Liquefaction Resistance of Soils: Summary Report from the 1996 NCEER and 1998 NCEER/NSF Workshops on Evaluation of Liquefaction Resistance of Soils", Journal of Geotechnical and Geoenvironmental Engineering, Vol.127, No.10, pp.817-833.
10.1061/(ASCE)1090-0241(2001)127:10(817)
30
Yasuda, S., Yoshida, N., Adachi, K., Kiku, H., and Gose, S. (1999). "A Simplified Analysis of Liquefaction-induced Residual Deformation", Proceedings of the 2nd International Conference on Earthquake Geotechnical Engineering, pp.555-560.
31
Yi, J., Kwon, O., and Park, W. (2006), "Evaluation of Liquefaction potential for Soil Using Probabilistic Approaches", Korea Society of Civil Engineering, Vol.26, No.5C, pp.313-322.
Information
  • Publisher :The Korean Geotechnical Society
  • Publisher(Ko) :한국지반공학회
  • Journal Title :Journal of the Korean Geotechnical Society
  • Journal Title(Ko) :한국지반공학회 논문집
  • Volume : 35
  • No :7
  • Pages :15-27
  • Received Date : 2019-03-22
  • Revised Date : 2019-05-27
  • Accepted Date : 2019-06-01