Effects of Fracture Characteristics on Spontaneous Imbibition in a Tight Reservoir
暂无分享,去创建一个
[1] Zhangxin Chen,et al. Numerical modeling of fluid flow in tight oil reservoirs considering complex fracturing networks and Pre-Darcy flow , 2021 .
[2] Z. Daraktchieva,et al. Study of baseline radon levels in the context of a shale gas development. , 2021, The Science of the total environment.
[3] Yuetian Liu,et al. A data-driven shale gas production forecasting method based on the multi-objective random forest regression , 2021 .
[4] H. Stephens,et al. Valuing shale gas development in resource-dependent communities , 2020 .
[5] Chuixian Kong,et al. Novel Method for Studying, the, Imbibition Production Mechanism Using NMR , 2020, Chemistry and Technology of Fuels and Oils.
[6] Wei Zhou,et al. What role would the pores related to brittle minerals play in the process of oil migration and oil & water two-phase imbibition? , 2020 .
[7] Yang Liu,et al. A new classification system of lithic-rich tight sandstone and its application to diagnosis high-quality reservoirs , 2020, Advances in Geo-Energy Research.
[8] Liu Yang,et al. A comparative study of ion diffusion during water imbibition in shale, sandstone and volcanic rock , 2020, Capillarity.
[9] D. Dong,et al. Development trend of marine shale gas reservoir evaluation and a suitable comprehensive evaluation system , 2020, Natural Gas Industry B.
[10] M. Ghaedi,et al. A new scaling equation for imbibition process in naturally fractured gas reservoirs , 2020, Advances in Geo-Energy Research.
[11] J. Leng,et al. Parameter Prediction of Water Imbibition in Unsaturated Shales Using the NMR Method , 2019 .
[12] G. Nowaczyk,et al. New Insight on Water Status in Germinating Brassica napus Seeds in Relation to Priming-Improved Germination , 2019, International journal of molecular sciences.
[13] Jianchao Cai,et al. Oil recovery by spontaneous imbibition from partially water-covered matrix blocks with different boundary conditions , 2019, Journal of Petroleum Science and Engineering.
[14] Chaohui Lyu,et al. Experimental study of boundary condition effects on spontaneous imbibition in tight sandstones , 2019, Fuel.
[15] Zhangxin Chen,et al. An analysis of stochastic discrete fracture networks on shale gas recovery , 2018, Journal of Petroleum Science and Engineering.
[16] Zhengming Yang,et al. Experimental study on spontaneous imbibition chatacteristics of tight rocks , 2018, Advances in Geo-Energy Research.
[17] Guoqing Xu,et al. Characteristics and Influencing Factors for Forced Imbibition in Tight Sandstone Based on Low-Field Nuclear Magnetic Resonance Measurements , 2018, Energy & Fuels.
[18] Jianchao Cai,et al. Recent advances in spontaneous imbibition with different boundary conditions , 2018, Capillarity.
[19] Junran Li,et al. Effect of hydrocarbon on evaluating formation pore structure using nuclear magnetic resonance (NMR) logging , 2018 .
[20] Brian F. Towler,et al. Microemulsion-enhanced displacement of oil in porous media containing carbonate cements , 2017 .
[21] Zhangxin Chen,et al. Modeling tracer flowback in tight oil reservoirs with complex fracture networks , 2017 .
[22] Bin Yuan,et al. Review on gas flow and recovery in unconventional porous rocks , 2017 .
[23] Fengpeng Lai,et al. Experimental Investigation of Spontaneous Imbibition in a Tight Reservoir with Nuclear Magnetic Resonance Testing , 2016 .
[24] Yuanfang Cheng,et al. The effect of microstructure and rock mineralogy on water imbibition characteristics in tight reservoirs , 2016 .
[25] M. Ghaedi,et al. Scaling equation for counter current imbibition in the presence of gravity forces considering initial water saturation and SCAL properties , 2016 .
[26] Z. Pang,et al. Asymmetry Characteristics of Oil Production by Spontaneous Imbibition from Cores with Two Ends Open , 2016, Transport in Porous Media.
[27] G. Moridis,et al. Numerical Simulation of Hydraulic Fracturing Water Effects on Shale Gas Permeability Alteration , 2016, Transport in Porous Media.
[28] Xiangyun Hu,et al. Generalized modeling of spontaneous imbibition based on Hagen-Poiseuille flow in tortuous capillaries with variably shaped apertures. , 2014, Langmuir : the ACS journal of surfaces and colloids.
[29] M. Mehta,et al. Analytical Approximate Expression for Cocurrent Imbibition during Immiscible Two-Phase Flow through Porous Media , 2014 .
[30] A. Mirzaei-Paiaman,et al. Scaling Equations for Oil/Gas Recovery from Fractured Porous Media by Counter-Current Spontaneous Imbibition: From Development to Application , 2013 .
[31] Jianzhang Xiao,et al. Particle stratification and penetration of a linear vibrating screen by the discrete element method , 2012 .
[32] L. Gladden,et al. Magnetic resonance imaging studies of spontaneous capillary water imbibition in aerated gypsum , 2011 .
[33] N. Morrow,et al. Spontaneous Counter-Current Imbibition into Core Samples with All Faces Open , 2009 .
[34] E. Laca,et al. Water relations of drumstick tree seed (Moringa oleifera): Imbibition, desiccation, and sorption isotherms , 2008 .
[35] Hasan O. Yildiz,et al. Effect of shape factor, characteristic length, and boundary conditions on spontaneous imbibition , 2006 .
[36] N. Morrow,et al. Correlation for the effect of fluid viscosities on counter-current spontaneous imbibition , 2010 .
[37] D. Standnes. Experimental Study of the Impact of Boundary Conditions on Oil Recovery by Co-Current and Counter-Current Spontaneous Imbibition , 2004 .
[38] M. Gruwel,et al. A magnetic resonance study of water uptake in whole barley kernels , 2001 .
[39] S. Ma,et al. Characterization of Wettability From Spontaneous Imbibition Measurements , 1999 .
[40] F. Orr,et al. Low IFT drainage and imbibition , 1994 .
[41] Partha P. Mitra,et al. Mechanism of NMR Relaxation of Fluids in Rock , 1994 .