[1]
H. Soleimani et al., Magnetization of Ferrofluid and its Influence on Improving Oil Recovery,, in Defect and Diffusion Forum, 2019, vol. 390: Trans Tech Publ, pp.161-167.
DOI: 10.4028/www.scientific.net/ddf.390.161
Google Scholar
[2]
H. Hoteit and A. Firoozabadi, Numerical modeling of two-phase flow in heterogeneous permeable media with different capillarity pressures,, Advances in Water Resources, vol. 31, no. 1, pp.56-73, (2008).
DOI: 10.1016/j.advwatres.2007.06.006
Google Scholar
[3]
A. Saidi, Simulation of naturally fractured reservoirs,, in SPE Reservoir Simulation Symposium, 1983: Society of Petroleum Engineers.
Google Scholar
[4]
H. Soleimani et al., Impact of carbon nanotubes based nanofluid on oil recovery efficiency using core flooding,, Results in Physics, vol. 9, pp.39-48, (2018).
DOI: 10.1016/j.rinp.2018.01.072
Google Scholar
[5]
M. F. Hamza, H. Soleimani, C. M. Sinnathambi, Z. M. A. Merican, and K. D. Stephen, Laboratory characterization of crude oil and sandstone reservoir for chemical enhanced oil recovery,, World Journal of Engineering, vol. 15, no. 3, pp.354-361, (2018).
DOI: 10.1108/wje-08-2017-0219
Google Scholar
[6]
H. Soleimani et al., Effect of Annealing Temperature on the Crystallization of Hematite-Alumina (Fe2O3-Al2O3) Nanocomposite and Its Influence in EOR Application,, in Journal of Nano Research, 2014, vol. 29: Trans Tech Publ, pp.105-113.
Google Scholar
[7]
K. C. Lee et al., Effect of Zinc Oxide Nanoparticle Sizes on Viscosity of Nanofluid for Application in Enhanced Oil Recovery,, in Journal of Nano Research, 2016, vol. 38: Trans Tech Publ, pp.36-39.
DOI: 10.4028/www.scientific.net/jnanor.38.36
Google Scholar
[8]
H. Soleimani et al., Synthesis of ZnO nanoparticles for oil–water interfacial tension reduction in enhanced oil recovery,, Applied Physics A, vol. 124, no. 2, p.128, (2018).
DOI: 10.1007/s00339-017-1510-4
Google Scholar
[9]
A. Bera and H. Belhaj, A comprehensive review on characterization and modeling of thick capillary transition zones in carbonate reservoirs,, Journal of Unconventional Oil and Gas Resources, vol. 16, pp.76-89, (2016).
DOI: 10.1016/j.juogr.2016.10.001
Google Scholar
[10]
K. Lee, M. Adil, H. M. Zaid, B. H. Guan, H. Soleimani, and M. Weis, Wettability, Interfacial Tension (IFT) and Viscosity Alteration of Nanofluids Under Electromagnetic (EM) Waves for Enhanced Oil Recovery (IFT) Applications,, in Engineering Design Applications: Springer, 2019, pp.305-311.
DOI: 10.1007/978-3-319-79005-3_21
Google Scholar
[11]
M. F. Hamza, Z. M. A. Merican, H. Soleimani, S. Z. Abghari, C. M. Sinnathambi, and K. D. Stephen, A laboratory study of chemical enhanced oil recovery (CEOR) in compartmentalized sandstone reservoir: A case study of a 2-D phase macro-model reservoir,, (2006).
DOI: 10.1108/wje-08-2017-0219
Google Scholar
[12]
A. Repin, O. Rodionov, and M. Shumskayte, Effect of porosity, pore size and permeability on the complex relative permittivity of sandstone,, in 2017 Progress In Electromagnetics Research Symposium-Spring (PIERS), 2017: IEEE, pp.3786-3789.
DOI: 10.1109/piers.2017.8262417
Google Scholar
[13]
I. Neuweiler, S. Attinger, W. Kinzelbach, and P. King, Large scale mixing for immiscible displacement in heterogeneous porous media,, Transport in Porous Media, vol. 51, no. 3, pp.287-314, (2003).
DOI: 10.1023/a:1022370927468
Google Scholar
[14]
D. Landa-Marbán, F. A. Radu, and J. M. Nordbotten, Modeling and simulation of microbial enhanced oil recovery including interfacial area,, Transport in Porous Media, vol. 120, no. 2, pp.395-413, (2017).
DOI: 10.1007/s11242-017-0929-6
Google Scholar
[15]
H. Ali, H. Soleimani, N. Yahya, M. Baig, and A. Rostami, Finite element method for modelling of two phase fluid flow in porous media,, in Journal of Physics: Conference Series, 2018, vol. 1123, no. 1: IOP Publishing, p.012002.
DOI: 10.1088/1742-6596/1123/1/012002
Google Scholar
[16]
J. Beaumont, H. Bodiguel, and A. Colin, Drainage in two-dimensional porous media with polymer solutions,, Soft Matter, vol. 9, no. 42, pp.10174-10185, (2013).
DOI: 10.1039/c3sm51480c
Google Scholar
[17]
Q. Sun, Z. Li, S. Li, L. Jiang, J. Wang, and P. Wang, Utilization of surfactant-stabilized foam for enhanced oil recovery by adding nanoparticles,, Energy & Fuels, vol. 28, no. 4, pp.2384-2394, (2014).
DOI: 10.1021/ef402453b
Google Scholar
[18]
W.-C. Lo, G. Sposito, and E. Majer, Low-frequency dilatational wave propagation through unsaturated porous media containing two immiscible fluids,, Transport in porous media, vol. 68, no. 1, pp.91-105, (2007).
DOI: 10.1007/s11242-006-9059-2
Google Scholar
[19]
Y. Liu, L. Wang, X. Liu, and T. Ding, Effects of capillary pressure–fluid saturation–relative permeability relationships on predicting carbon dioxide migration during injection into saline aquifers,, Energy Procedia, vol. 63, pp.3616-3631, (2014).
DOI: 10.1016/j.egypro.2014.11.392
Google Scholar
[20]
D. Bolster, M. Dentz, and J. Carrera, Effective two‐phase flow in heterogeneous media under temporal pressure fluctuations,, Water resources research, vol. 45, no. 5, (2009).
DOI: 10.1029/2008wr007460
Google Scholar
[21]
C. Jungreuthmayer et al., The 3D pore structure and fluid dynamics simulation of macroporous monoliths: High permeability due to alternating channel width,, Journal of Chromatography A, vol. 1425, pp.141-149, (2015).
DOI: 10.1016/j.chroma.2015.11.026
Google Scholar
[22]
H. M. Zaid et al., Effect of Nickel: Zinc Ratio in Nickel-Zinc-Ferrite Nanoparticles as Surfactant on Recovery Efficiency in Enhanced Oil Recovery,, Journal of Nano Research, vol. 29, (2014).
DOI: 10.4028/www.scientific.net/jnanor.29.115
Google Scholar
[23]
A. Khoei, N. Hosseini, and T. Mohammadnejad, Numerical modeling of two-phase fluid flow in deformable fractured porous media using the extended finite element method and an equivalent continuum model,, Advances in water resources, vol. 94, pp.510-528, (2016).
DOI: 10.1016/j.advwatres.2016.02.017
Google Scholar
[24]
L. Yang, L. Ai, K. H. Xue, Z. Ling, and Y. H. Li, Analyzing the effects of inhomogeneity on the permeability of porous media containing methane hydrates through pore network models combined with CT observation,, (in English), Energy, vol. 163, pp.27-37, Nov 15 2018,.
DOI: 10.1016/j.energy.2018.08.100
Google Scholar
[25]
D. Pavone, A Darcy's law extension and a new capillary pressure equation for two-phase flow in porous media,, in SPE Annual Technical Conference and Exhibition, 1990: Society of Petroleum Engineers.
DOI: 10.2118/20474-ms
Google Scholar
[26]
A. Raoof, S. M. Hassanizadeh, and A. Leijnse, Upscaling Transport of Adsorbing Solutes in Porous Media: Pore-Network Modeling,, (in English), Vadose Zone Journal, vol. 9, no. 3, pp.624-636, Aug 2010,.
DOI: 10.2136/vzj2010.0026
Google Scholar
[27]
Q. R. Xiong, T. G. Baychev, and A. P. Jivkov, Review of pore network modelling of porous media: Experimental characterisations, network constructions and applications to reactive transport,, (in English), Journal of Contaminant Hydrology, vol. 192, pp.101-117, Sep 2016,.
DOI: 10.1016/j.jconhyd.2016.07.002
Google Scholar
[28]
M. Regaieg and A. Moncorge, Adaptive dynamic/quasi-static pore network model for efficient multiphase flow simulation,, (in English), Computational Geosciences, vol. 21, no. 4, pp.795-806, Aug 2017,.
DOI: 10.1007/s10596-017-9661-0
Google Scholar