References
- API Specification (2000), Specification for Line Pipe, American Petroleum Institute.
- Bui, H.H., Fukagawa, R., Sako, K. and Wells, J.C. (2011), "Slope stability analysis and discontinuous slope failure simulation by elasto-plastic smoothed particle hydrodynamics (SPH)", Geotechnique, 61(7), 565-574. https://doi.org/10.1680/geot.9.P.046
- Bui, H.H., Sako, K., Fukagawa, R. and Wells J.C. (2008), "SPHbased numerical simulations for large deformation of geomaterial considering soil-structure interaction", Proceedings of the 12th International Conference of International Association for Computer Methods and Advances in Geomechanics, Goa, India, October.
- Castiglia, M., Morgante, S., Napolitano, A. and Santucci de Magistris, F. (2017), "Mitigation measures for the stability of pipelines in liquefiable soils", J. Pipeline Eng., 16(3), 115-139.
- Chian, S.C., Tokimatsu, K. and Madabhushi, S.P.G. (2014), "Soil liquefaction-induced uplift of underground structures: Physical and numerical modeling", J. Geotech. Geoenviron. Eng., 140(10), 04014057. https://doi.org/10.1061/(ASCE)GT.1943-5606.0001159
- Chian, S.C., Wang, J., Haigh, S.K. and Madabhushi, S.P.G. (2015), "Soil deformation during monotonic and seismic pipe uplift in liquefiable soil", J. Pipeline Eng., 14(1), 33-41.
- Dai, Z., Huang, Y., Cheng, H. and Xu, Q. (2014), "3D numerical modeling using smoothed particle hydrodynamics of flow-like landslide propagation triggered by the 2008 Wenchuan earthquake", Eng. Geol., 180, 21-33. https://doi.org/10.1016/j.enggeo.2014.03.018
- GEER (2010), Geo-Engineering Reconnaissance of the February 27, 2010 Maule, Chile Earthquake, Geoengineering Extreme Events Reconnaissance GEER Association Report No. GEER-022 Version 2: May 25, 2010
- Holz, D., Beer, T. and Kuhlen, T. (2009), Soil Deformation Models for Real-Time Simulation: A Hybrid Approach, in Workshop on Virtual Reality Interaction and Physical Simulation VRIPHYS.
- Huang, B., Liu, J., Lin, P. and Ling, D. (2014), "Uplifting behavior of shallow buried pipe in liquefiable soil by dynamic centrifuge test", Sci. World J.
- Huang, Y. and Dai, Z. (2014), "Large deformation and failure simulations for geo-disasters using smoothed particle hydrodynamics method", Eng. Geol., 168, 86-97. https://doi.org/10.1016/j.enggeo.2013.10.022
- Huang, Y., Zhang, W., Dai, Z. and Xu, Q. (2013), "Numerical simulation of flow processes in liquefied soils using a soilwater-coupled smoothed particle hydrodynamics method", Nat. Hazards, 69(1), 809-827. https://doi.org/10.1007/s11069-013-0736-5
- Huang, Y., Zhang, W.J., Mao, W.W. and Jin, C. (2011), "Flow analysis of liquefied soils based on smoothed particle hydrodynamics", Nat. Hazards, 59(3), 1547-1560. https://doi.org/10.1007/s11069-011-9851-3
- Ibrahim, A.M.A. (2015), "Modeling and analysis of geo-disaster problems using the SPH method", Ph.D. Dissertation, Hokkaido University, Hokkaido, Japan.
- Kazem, S., Shokouhi, S., Dolatshah, A. and Ghobakhloo, E. (2013), "Seismic strain analysis of buried pipelines in a fault zone using hybrid FEM-ANN approach", Earthq. Struct., 5(4), 417-438. https://doi.org/10.12989/eas.2013.5.4.417
- Koneshwaran, S., Thambiratnam, D.P. and Gallage C. (2015), "Blast response of segmented bored tunnel using coupled SPHFE method", Struct., 2, 58-71. https://doi.org/10.1016/j.istruc.2015.02.001
- Koseki, J., Matsuo, O. and Koga Y. (1997), "Uplift behavior of underground structures caused by liquefaction of surrounding soil during earthquake", Soil. Found., 37(1), 97-108. https://doi.org/10.3208/sandf.37.97
- Lanzano, G., Salzano, E., Santucci de Magistris, F. and Fabbrocino, G. (2013), "Seismic vulnerability of natural gas pipelines", Reliab. Eng. Syst. Safe., 117, 73-80. https://doi.org/10.1016/j.ress.2013.03.019
- Lanzano, G., Santucci de Magistris, F., Fabbrocino, G. and Salzano, E. (2015), "Seismic damage to pipelines in the framework of Na-Tech risk assessment", J. Loss Prevent. Proc. Industr., 33, 159-172. https://doi.org/10.1016/j.jlp.2014.12.006
- Ling, H.I., Mohri, Y., Kawabata, T., Liu, H., Burke, C. and Sun L. (2003), "Centrifugal modeling of seismic behavior of largediameter pipe in liquefiable soil", J. Geotech. Geoenviron. Eng., 129(12), 1092-1011. https://doi.org/10.1061/(ASCE)1090-0241(2003)129:12(1092)
- Ling, H.I., Sun, L., Liu, H., Mohri, Y. and Kawabata T. (2008), "Finite element analysis of pipe buried in saturated soil deposit subject to earthquake loading", J. Earthq. Tsunami, 2(1), 1-17. https://doi.org/10.1142/S1793431108000244
- Liu, H. and Song, E. (2005), "Seismic response of large underground structures in liquefiable soils subjected to horizontal and vertical earthquake excitations", Comput. Geotech., 32(4), 223-244. https://doi.org/10.1016/j.compgeo.2005.02.002
- Maeda, K., Sakai, H. and Sakai M. (2006), "Development of seepage failure analysis method of ground with smoothed particle hydrodynamics", Struct. Eng. Earthq. Eng., 23(2), 307-319.
- Mahdi, M. and Katebi, H. (2015), "Numerical modeling of uplift resistance of buried pipelines in sand, reinforced with geogrid and innovative grid-anchor system", Geomech. Eng., 9(6), 757-774. https://doi.org/10.12989/gae.2015.9.6.757
- Naili, M., Matsushima, T. and Yamada, Y. (2005a), "A 2D smoothed particle hydrodynamics method for liquefaction induced lateral spreading analysis", Journal of Applied Mechanical, 8, 591-599. https://doi.org/10.2208/journalam.8.591
- Naili, M., Matsushima, T. and Yamada, Y. (2005b), "Smoothed particles hydrodynamics for numerical simulation of soilstructure problem due to liquefaction", Proceedings of the 40th Japan National Conference on Geotechnical Engineering, Hokkaido, Japan, July.
- Niroumand, H., Mehrizi, M.E.M. and Saaly, M. (2016), "Application of mesh-free smoothed particle hydrodynamics (SPH) for study of soil behavior", Geomech. Eng., 11(1), 1-39. https://doi.org/10.12989/gae.2016.11.1.001
- O'Rourke, M.J. and Liu, X. (1999), Response of Buried Pipelines Subjected to Earthquake Effects, MCEER Monograph No.3, University of New York, Buffalo, New York, U.S.A.
- Paolucci, R., Griffini, S. and Mariani, S. (2010), "Simplified modelling of continuous buried pipelines subject to earthquake fault rupture", Earthq. Struct., 1(3), 253-267. https://doi.org/10.12989/eas.2010.1.3.253
- Pastor, M., Haddad, B., Sorbino, G. and Drempetic V. (2009), "A depth-integrated, coupled SPH model for flow-like landslides and related phenomena", J. Numer. Anal. Meth. Geomech., 33(2), 143-172. https://doi.org/10.1002/nag.705
- Pastor, M., Zienkiewicz, O.C. and Chan, A.H.C. (1990), "Generalized plasticity and the modeling of soil behavior", J. Numer. Anal. Meth. Geomech., 14(3), 151-190. https://doi.org/10.1002/nag.1610140302
- Sasaki, T. and Tamura, K. (2004), "Prediction of liquefactioninduced uplift displacement of underground structures", Proceedings of the 36th Joint Meeting U.S.-Japan Panel on Wind and Seismic Effects, Gaithersburg, Maryland, U.S.A.
- Seed, H.B. and Idriss, I.M. (1971), "Simplified procedure for evaluating soil liquefaction potential", J. Soil Mech. Found. Div., 97(9), 1249-1273.
- Shao, S.D. (2010), "Incompressible SPH flow model for wave interactions with porous media", Coast. Eng., 57(3), 304-316. https://doi.org/10.1016/j.coastaleng.2009.10.012
- Stefanova, B., Seitz, K., Bubel, J. and Grabe J. (2012), "Water-soil interaction simulation using smoothed particle hydrodynamics", Proceedings of the 6th International Conference on Scour and Erosion, Paris, France, August.
- Wang, Z.L., Dafalias, Y.F. and Shen, C.K. (1990), "Bounding surface hypoplasticity model for sand", J. Eng. Mech., 116(5), 983-1001. https://doi.org/10.1061/(ASCE)0733-9399(1990)116:5(983)
- Wang, Z.Q., Lu, Y., Hao, H. and Chong, K. (2005), "A full coupled numerical analysis approach for buried structures subjected to subsurface blast", Comput. Struct., 83(4-5), 339-356. https://doi.org/10.1016/j.compstruc.2004.08.014
- Yamada, S., Orense, R. and Cubrinovski, M. (2011), "Geotechnical damage due to the 2011 Christchurch, New Zealand", Soc. Soil Mech. Geotech. Eng., 5(2), 27-45.
- Yang, Z. (2000), "Numerical modeling of earthquake site response including dilatation and liquefaction", Ph.D. Dissertation, Columbia University, New York, U.S.A.
- Yu, S.Y., Choi, H.S., Park, K.S., Kim, Y.T. and Kim D.K. (2017), "Advanced procedure for estimation of pipeline embedment on soft clay seabed", Struct. Eng. Mech., 62(4), 381-389. https://doi.org/10.12989/sem.2017.62.4.381
- Zhang, W. and Goh A.T.C. (2016), "Evaluating seismic liquefaction potential using multivariate adaptive regression splines and logistic regression", Geomech. Eng., 10(3), 269-284. https://doi.org/10.12989/gae.2016.10.3.269
- Zhuang, H., Hu, Z., Wang, X. and Chen, G. (2015), "Seismic responses of a large underground structure in liquefied soils by FEM numerical modelling", Bull. Earthq. Eng., 13(12), 3645-3668. https://doi.org/10.1007/s10518-015-9790-6
Cited by
- Pipeline Performances under Earthquake-Induced Soil Liquefaction: State of the Art on Real Observations, Model Tests, and Numerical Simulations vol.2020, pp.None, 2018, https://doi.org/10.1155/2020/8874200
- Mitigation of liquefaction-induced uplift of underground structures by soil replacement methods vol.23, pp.4, 2018, https://doi.org/10.12989/gae.2020.23.4.365