3D DEM modeling on mechanical weakening of gas hydrate-bearing sandy sediments during hydrate dissociation
暂无分享,去创建一个
D. Gao | Zhichao Liu | F. Ning | Xiaofeng Dou | Yanlong Li | Yingjie Zhao | Wei Hu | Xiaodong Li | Fulong Ning
[1] F. Ning,et al. Facilitating gas hydrate dissociation kinetics and gas migration in clay interlayer by surface cations shielding effects , 2022, Fuel.
[2] Xiang Sun,et al. Effect of Hydrate Distribution on the Mechanical Response of Hydrate-Bearing Sand: Discrete Element Method Simulation , 2022, Energy & Fuels.
[3] Hailong Lu,et al. DEM investigation of the effect of hydrate morphology on the mechanical properties of hydrate-bearing sands , 2022, Computers and Geotechnics.
[4] Haihao Yu,et al. Strain-Softening Characteristics of Hydrate-Bearing Sediments and Modified Duncan–Chang Model , 2021, Advances in Materials Science and Engineering.
[5] Yu Liu,et al. A numerical investigation on the mechanical properties of hydrate-bearing sand using Distinct Element Method , 2021, Journal of Natural Gas Science and Engineering.
[6] Xuhui Zhang,et al. Experimental Study on the Shear Band of Methane Hydrate-Bearing Sediment , 2021, Journal of Marine Science and Engineering.
[7] Changfu Wei,et al. Mechanical behavior of hydrate-bearing sands with fine particles under isotropic and triaxial compression , 2021 .
[8] M. Jiang,et al. Salinity effects on the mechanical behaviour of methane hydrate bearing sediments: A DEM investigation , 2021 .
[9] Cheng-shun Xu,et al. The depressurization of natural gas hydrate in the multi-physics coupling simulation based on a new developed constitutive model , 2021 .
[10] Weiguo Liu,et al. Mechanical behaviors of hydrate-bearing sediment with different cementation spatial distributions at microscales , 2021, iScience.
[11] Xiang Zhang,et al. Study of shear behavior of granular materials by 3D DEM simulation of the triaxial test in the membrane boundary condition , 2021 .
[12] Jianfeng Wang,et al. DEM simulations of cemented sands with a statistical representation of micro-bond parameters , 2021 .
[13] Weiguo Liu,et al. Mechanical Characteristics of Hydrate-Bearing Sediment: A Review , 2020, Energy & Fuels.
[14] Xianqi Luo,et al. Oedometer test of natural gas hydrate-bearing sands: Particle-scale simulation , 2020 .
[15] Y. Seo,et al. Influence of CH4 hydrate exploitation using depressurization and replacement methods on mechanical strength of hydrate-bearing sediment , 2020 .
[16] Yongchen Song,et al. Deformation behaviors of hydrate-bearing silty sediment induced by depressurization and thermal recovery , 2020 .
[17] A. Tang,et al. An experimental investigation on methane hydrate morphologies and pore habits in sandy sediment using synchrotron X-ray computed tomography , 2020, Marine and Petroleum Geology.
[18] Yang Li,et al. Geomechanical issues in the exploitation of natural gas hydrate , 2020 .
[19] Weiguo Liu,et al. Microstructure Evolution of Hydrate‐Bearing Sands During Thermal Dissociation and Ensued Impacts on the Mechanical and Seepage Characteristics , 2020, Journal of Geophysical Research: Solid Earth.
[20] Yu Zhang,et al. Sediment deformation and strain evaluation during methane hydrate dissociation in a novel experimental apparatus , 2020 .
[21] Xingwei Ren,et al. Permeability of hydrate-bearing sediments , 2020 .
[22] Nu Lu,et al. Study on the Effects of Heterogeneous Distribution of Methane Hydrate on Permeability of Porous Media Using Low‐Field NMR Technique , 2020, Journal of Geophysical Research: Solid Earth.
[23] Weiguo Liu,et al. Cementation Failure Behavior of Consolidated Gas Hydrate‐Bearing Sand , 2020, Journal of Geophysical Research: Solid Earth.
[24] Hua-lin Liao,et al. Strength estimation for hydrate-bearing sediments based on triaxial shearing tests , 2020 .
[25] Yanlong Li,et al. Mechanical Properties of Methane Hydrate-Bearing Interlayered Sediments , 2019, Journal of Ocean University of China.
[26] Huan Li,et al. Weibull grain-based model (W-GBM) for simulating heterogeneous mechanical characteristics of salt rock , 2019, Engineering Analysis with Boundary Elements.
[27] Huan Li,et al. Weibull linear parallel bond model (WLPBM) for simulating micro-mechanical characteristics of heterogeneous rocks , 2019, Engineering Analysis with Boundary Elements.
[28] Yu Liu,et al. The effects of compressibility of natural gas hydrate-bearing sediments on gas production using depressurization , 2019, Energy.
[29] Yongchen Song,et al. Numerical modeling for the mechanical behavior of marine gas hydrate-bearing sediments during hydrate production by depressurization , 2019, Journal of Petroleum Science and Engineering.
[30] Yang Li,et al. Seafloor subsidence response and submarine slope stability evaluation in response to hydrate dissociation , 2019, Journal of Natural Gas Science and Engineering.
[31] Zhichao Liu,et al. Tetrahydrofuran Hydrate in Clayey Sediments—Laboratory Formation, Morphology, and Wave Characterization , 2019, Journal of Geophysical Research: Solid Earth.
[32] Yongchen Song,et al. Numerical study of gas production from marine hydrate formations considering soil compression and hydrate dissociation due to depressurization , 2019, Marine and Petroleum Geology.
[33] C. Clayton,et al. The Effects of Hydrate on the Strength and Stiffness of Some Sands , 2019, Journal of Geophysical Research: Solid Earth.
[34] M. Jiang,et al. Investigating the mechanical behavior of grain-coating type methane hydrate bearing sediment in true triaxial compression tests by distinct element method , 2018, SCIENTIA SINICA Physica, Mechanica & Astronomica.
[35] Min Wu,et al. Wellbore stability analysis during drilling through marine gas hydrate-bearing sediments in Shenhu area: A case study , 2018, Journal of Petroleum Science and Engineering.
[36] Z. Zhong,et al. A parallel-bonded chemical corrosion model for discrete element modelling of chemically corroded limestone , 2018, Engineering Fracture Mechanics.
[37] K. Yamamoto,et al. Upscaled Anisotropic Methane Hydrate Critical State Model for Turbidite Hydrate‐Bearing Sediments at East Nankai Trough , 2018, Journal of Geophysical Research: Solid Earth.
[38] Zhe Wang,et al. Tri-Axial Shear Tests on Hydrate-Bearing Sediments during Hydrate Dissociation with Depressurization , 2018, Energies.
[39] M. Jiang,et al. CFD-DEM simulation of submarine landslide triggered by seismic loading in methane hydrate rich zone , 2018, Landslides.
[40] Xing Lu,et al. Mechanical properties of gas hydrate-bearing sediments during hydrate dissociation , 2018 .
[41] Li Peng,et al. Strength Estimation for Hydrate‐Bearing Sediments From Direct Shear Tests of Hydrate‐Bearing Sand and Silt , 2018 .
[42] Yang Wu,et al. Influence of Fines Content on the Mechanical Behavior of Methane Hydrate‐Bearing Sediments , 2017 .
[43] M. Jiang,et al. DEM investigation of mechanical behavior and strain localization of methane hydrate bearing sediments with different temperatures and water pressures , 2017 .
[44] M. Ye,et al. Cyclic loading tests on ceramic breeder pebble bed by discrete element modeling , 2017 .
[45] Changfu Wei,et al. An easy and efficient way to evaluate mechanical properties of gas hydrate-bearing sediments: The direct shear test , 2017 .
[46] L. Cui,et al. DEM simulations of methane hydrate exploitation by thermal recovery and depressurization methods , 2016 .
[47] Norio Tenma,et al. Strengthening mechanism of cemented hydrate‐bearing sand at microscales , 2016 .
[48] Gang Li,et al. Investigation into gas production from natural gas hydrate: A review , 2016 .
[49] Jianfeng Wang,et al. DEM Analysis of Geomechanical Properties of Cemented Methane Hydrate–Bearing Soils at Different Temperatures and Pressures , 2016 .
[50] M. Jiang,et al. DEM simulation of bonded granular material. Part II: Extension to grain-coating type methane hydrate bearing sand , 2016 .
[51] Praveen Linga,et al. Review of natural gas hydrates as an energy resource: Prospects and challenges ☆ , 2016 .
[52] J. Nagao,et al. Effect of methane hydrate morphology on compressional wave velocity of sandy sediments: Analysis of pressure cores obtained in the Eastern Nankai Trough , 2015 .
[53] J. Nagao,et al. Mechanical behavior of hydrate-bearing pressure-core sediments visualized under triaxial compression , 2015 .
[54] Zhihong Zhao,et al. Particle mechanics modeling of creep behavior of rockfill materials under dry and wet conditions , 2015 .
[55] W. Zhou,et al. Combined FEM/DEM Modeling of Triaxial Compression Tests for Rockfills with Polyhedral Particles , 2014 .
[56] M. Jiang,et al. Study of mechanical behavior and strain localization of methane hydrate bearing sediments with different saturations by a new DEM model , 2014 .
[57] Yukio Nakata,et al. Effects of dissociation on the shear strength and deformation behavior of methane hydrate-bearing sediments , 2014 .
[58] Yongchen Song,et al. Experimental research on the mechanical properties of methane hydrate-bearing sediments during hydrate dissociation , 2014 .
[59] Yukio Nakata,et al. Mechanical behavior of gas‐saturated methane hydrate‐bearing sediments , 2013 .
[60] Yukio Nakata,et al. Mechanical and dissociation properties of methane hydrate-bearing sand in deep seabed , 2013 .
[61] Yan Rong-tao. A statistical damage constitutive model of hydrate-bearing sediments , 2013 .
[62] Thijs J. H. Vlugt,et al. Mechanical properties of clathrate hydrates: status and perspectives , 2012 .
[63] Christopher M. Wensrich,et al. Rolling friction as a technique for modelling particle shape in DEM , 2012 .
[64] R. Boswell,et al. Current perspectives on gas hydrate resources , 2011 .
[65] Jian Fei Chen,et al. Assessment of rolling resistance models in discrete element simulations , 2011 .
[66] K. Soga,et al. Discrete element modelling of geomechanical behaviour of methane hydrate soils with pore-filling hydrate distribution , 2010 .
[67] Tae Sup Yun,et al. Physical properties of hydrate‐bearing sediments , 2009 .
[68] C.R.I. Clayton,et al. Influence of gas hydrate morphology on the seismic velocities of sands , 2009 .
[69] D. Potyondy. Simulating stress corrosion with a bonded-particle model for rock , 2007 .
[70] Tae Sup Yun,et al. Mechanical properties of sand, silt, and clay containing tetrahydrofuran hydrate , 2007 .
[71] G. A. Jeffrey,et al. Clathrate Hydrates , 2007 .
[72] C. Clayton,et al. A laboratory investigation into the seismic velocities of methane gas hydrate‐bearing sand , 2005 .
[73] P. Cundall,et al. A bonded-particle model for rock , 2004 .
[74] W. Waite,et al. Methane hydrate formation in partially water-saturated Ottawa sand , 2004 .
[75] Hitoshi Tomaru,et al. Three-dimensional distribution of gas hydrate beneath southern Hydrate Ridge: Constraints from ODP Leg 204 , 2004 .
[76] E. D. Sloan,et al. Fundamental principles and applications of natural gas hydrates , 2003, Nature.
[77] T. Collett. Energy resource potential of natural gas hydrates , 2002 .
[78] Woo-Yeol Jung,et al. Holocene mass wasting on upper non‐Polar continental slopes—due to post‐Glacial ocean warming and hydrate dissociation? , 2002 .
[79] Gerald D. Holder,et al. Methane hydrates potential as a future energy source , 2001 .
[80] M. Oda,et al. Rolling Resistance at Contacts in Simulation of Shear Band Development by DEM , 1998 .
[81] K. Kvenvolden. Methane hydrate — A major reservoir of carbon in the shallow geosphere? , 1988 .
[82] P. Cundall,et al. A discrete numerical model for granular assemblies , 1979 .