[1]M Cai, Y Su, Y Hao, Y Guo, D Elsworth, L Li, D Li, X Li. Monitoring oil displacement and CO2 trapping in low-permeability media using NMR: A comparison of miscible and immiscible flooding. Fuel.2021,305:121606.
[2]J Fu, Y Su, Z Chen, L Li, W Wang, S Zhan.Distribution of a water film confined in inorganic nanopores in real shale gas reservoirs. Journal of Petroleum Science and Engineering, 2021,109831.
[3]J Fu, Y Su, L Li, W Wang, C Wang, D Li. Productivity model with mechanisms of multiple seepage in tight gas reservoir. Journal of Petroleum Science and Engineering,2021,109825.
[4]Z Li, Y Su, L Li, Y Hao, W Wang, Y Meng, A Zhao. Evaluation of CO2 storage of water alternating gas flooding using experimental and numerical simulation methods. Fuel, 122489.
[5]Y Su, X Zhang, L Li, Y Hao, S Zhan, W Wang, Z Wu, W Zhang.Experimental study on microscopic mechanisms and displacement efficiency of N2 flooding in deep-buried clastic reservoirs. Journal of Petroleum Science and Engineering, 2021,109789.
[6]M Cai, Y Su, S Zhan, D Elsworth, L Li. Immiscible/Near-Miscible relative permeability for confined fluids at high-pressure and high-temperature for a fractal reservoir. Fuel, 122389.
[7]M Li, YL Su, WD Wang, YJ Li, MZ Dong.Impact of cross-flow on well production in shale reservoir considering vertical variation of reservoir and fracture properties: Model and field application. Journal of Petroleum Science and Engineering, 109739.
[8]J Xu, S Zhan, W Wang, Y Su, H Wang.Molecular dynamics simulations of two-phase flow of n-alkanes with water in quartz nanopores. Chemical Engineering Journal, 132800.
[9]L Li, Z Chen, YL Su, LY Fan, MR Tang, JW Tu. Experimental Investigation on Enhanced-Oil-Recovery Mechanisms of Using Supercritical Carbon Dioxide as Prefracturing Energized Fluid in Tight Oil Reservoir.SPE Journal,26 (05), 3300-3315.
[11]Zafar, Atif, Su Yuliang, Li Lei, Mehmood Asif, Wang Han, Fu Jingang et al. The numerical simulation and wellbore modelling of steam injection and stored heat recovery from light oil reservoir. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects. 2021,1(43):1-16.
[12]Wang, Wendong, Wang Han, Su Yuliang, Tang Meirong, Xu Jilong, Zhang Qi et al. Simulation of liquid flow transport in nanoscale porous media using lattice Boltzmann method. Journal of the Taiwan Institute of Chemical Engineers, 2021,121: 128-138.
[13]J Xu, W Wang, B Ma, Y Su, H Wang, S Zhan.Stochastic-based liquid apparent permeability model of shale oil reservoir considering geological control.Journal of Petroleum Exploration and Production Technology, 11 (10), 3759-3773.
[14]Su Y, Li Z, Zhan S, et al. Correction for capillary pressure influence on relative permeability by combining modified black oil model and Genetic Algorithm. Journal of Petroleum Science and Engineering, 2021(204): 108762.
[15]Y Su, M Li, W Wang, M Dong.Fractal-Based Production Analysis for Shale Reservoir Considering Vertical Cross-Flow, Fractals.
[16]Li, Meng, Su Yuliang, Dong MingZhe et al. A numerical study of fluids desorption and phase behavior in shale oil reservoir using a chemical reaction model. Journal of Petroleum Science and Engineering, 196 (2021): 108050.
[17]G Li, Y Su, Y Guo, Y Hao, L Li. Frontier Enhanced Oil Recovery (EOR) Research on the Application of Imbibition Techniques in High-Pressure Forced Soaking of Hydraulically Fractured Shale Oil Reservoirs.Geofluids 2021.
[18]H Wang, Y Su, W Wang, Y Meng, X Xie, J Xu, Q Zhang. A new fractal apparent permeability model for liquid flow in tortuous nanopores from lattice Boltzmann simulations to theoretical model, Fractals.
[19]Lu Mingjing, Wang Zenglin, Gutierrez Marte, Chen Kai, Zheng Bintao, Sheng Guanglong, Su Yuliang. Apparent Porosity and Permeability Model of Inorganic Matter with Water Film in Shale Gas Reservoirs.Journal of Porous Media,2021,1(24).
[20]Wang, Han, Yuliang Su, and Wendong Wang. Investigations on Water Imbibing into Oil-Saturated Nanoporous Media: Coupling Molecular Interactions, the Dynamic Contact Angle, and the Entrance Effect.Industrial & Engineering Chemistry Research. 2021,4(60): 1872-1883.
[21]T Fang, S Li, Y Zhang, Y Su, Y Yan, J Zhang. How the oil recovery in deep oil reservoirs is affected by injected gas types: A molecular dynamics simulation study. Chemical Engineering Science 231 (2021): 116286.
[22]M Cai, Y Su, L Li, Y Hao, X Gao. CO2-Fluid-Rock Interactions and the Coupled Geomechanical Response during CCUS Processes in Unconventional Reservoirs.Geofluids, 2021.
[23]S Zhan, Y Su, M Lu, M Cai, J Fu, Z Liu, K Wang, Q Han. Effect of Surface Type on the Flow Characteristics in Shale Nanopores.Geofluids,2021.
[24]B Li, Y Su, M Husein, R Aguilera, M Lu. Temporal Scale Analysis of Gas Flow in Tight Gas Reservoirs considering the Nonequilibrium Effect.Geofluids,2021.
[25]H Wang, Y Su, R Qiao, J Wang, W Wang. Investigate Effects of Microstructures on Nanoconfined Water Flow Behaviors from Viscous Dissipation Perspectives.Transport in Porous Media, 2021:1-22.
[26]M Cai, Y Su, D Elsworth, L Li, L Fan. Hydro-mechanical-chemical modeling of sub-nanopore capillary-confinement on CO2-CCUS-EOR.Energy,2021,225: 120203.
[27] Su Y, Li Z, Zhan S, et al. Correction for capillary pressure influence on relative permeability by combining modified black oil model and Genetic Algorithm[J]. Journal of Petroleum Science and Engineering, 2021, 204: 108762.
[1]Zhan S, Su Y*, Jin Z, et al. Effect of water film on oil flow in quartz nanopores from molecular perspectives[J]. Fuel, 2020, 262: 116560.(SCI2区TOP)
[1]Sheng G, Javadpour F, Su Y*, et al. A Semianalytic Solution for Temporal Pressure and Production Rate in a Shale Reservoir With Nonuniform Distribution of Induced Fractures[J]. SPE Journal, 2019.(石油类SCI1区TOP)
[2]Wang H, Su Y*, Wang W, et al. Hydrodynamic resistance model of oil flow in nanopores coupling oil–wall molecular interactions and the pore-throat structures effect[J]. Chemical Engineering Science, 2019, 209: 115166.(SCI2区TOP)
[3]Fu J, Su Y*, Li L, et al. Predicted Model of Relative Permeability Considering Water Distribution Characteristics in Tight Sandstone Gas Reservoirs[J]. Fractals, 2019.(SCI2区)
[4]Wang H, Su Y*, Wang W, et al. Enhanced water flow and apparent viscosity model considering wettability and shape effects[J]. Fuel, 2019, 253: 1351-1360.(SCI2区TOP)
[5]Sheng G, Javadpour F, Su Y*. Dynamic porosity and apparent permeability in porous organic matter of shale gas reservoirs[J]. Fuel, 2019, 251: 341-351.(SCI2区TOP)
[6]Li L, Su Y*, Sheng J J, et al. Experimental and Numerical Study on CO2 Sweep Volume during CO2 Huff-n-Puff EOR Process in Shale Oil Reservoirs[J]. Energy & Fuels, 2019.(SCI2区TOP)
[7]Li B, Su Y*, Li X, et al. Temporal scale analysis of shale gas dynamic coupling flow[J]. Fuel, 2019, 239: 587-600.(SCI2区TOP)
[8]Wang H, Su Y*, Zhao Z, et al. Apparent permeability model for shale oil transport through elliptic nanopores considering wall-oil interaction[J]. Journal of Petroleum Science and Engineering, 2019, 176: 1041-1052.(SCI3区,石油类2区)
[9]Li L, Su Y*, Hao Y, et al. A comparative study of CO2 and N2 huff-n-puff EOR performance in shale oil production[J]. Journal of Petroleum Science and Engineering, 2019.(SCI3区,石油类2区)
[10]Sheng G, Su Y*, Wang W. A new fractal approach for describing induced-fracture porosity/permeability/compressibility in stimulated unconventional reservoirs[J]. Journal of Petroleum Science and Engineering, 2019, 179: 855-866.(SCI3区,石油类2区)
[11]Wang H, Su Y*, Wang W, et al. Relative permeability model of oil-water flow in nanoporous media considering multi-mechanisms[J]. Journal of Petroleum Science and Engineering, 2019, 183: 106361.(SCI3区,石油类2区)
[12]Zafar A, Su Y*, Li L, et al. The numerical simulation and wellbore modelling of steam injection and stored heat recovery from light oil reservoir[J]. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 2019: 1-16.(SCI)
[13]Lu M, Su Y*, Wen Z, et al. Research on stress alternation effects and fracture reorientation for refracturing treatment[J]. SIMULATION, 2019: 0037549719844016.(SCI)
[1]Sheng G, Javadpour F, Su Y. Effect of microscale compressibility on apparent porosity and permeability in shale gas reservoirs [J]. International Journal of Heat & Mass Transfer, 2018, 120.
[2]Li L., Sheng James J, Su Y.L. Further Investigation of Effects of Injection Pressure and Imbibition Water on CO2 Huff-n-Puff Performance in Liquid-Rich Shale Reservoirs [J]. ENERGY & FUELS, 2018(32), 5789-5798。
[3]Li B, Su Y, Zhan S, et al. Temporal scale analysis of two phase flow in fractured well [J]. Journal of Petroleum Science & Engineering, 2018.
[4]Zhang Q., Su Y.L, Wang W.D. Gas transport behaviors in shale nanopores based on multiple mechanisms and macroscale modeling [J]. International Journal of Heat and Mass Transfer 2018(12), 845-857.
[5]Long Ren, Jian Sun, Fankun Meng, Yuliang Su. Multi-fractures Drainage Response in Production of Fractured Horizontal Wells in Tight Sandstone Oil Reservoirs[J]. Arabian Journal for Science and Engineering, 2018.
[14]Sheng G.L., Xu T., Gou F.F., Yuliang Su et al. Performance analysis of multi-fractured horizontal wells with complex fracture networks in shale gas reservoir [J] Journal of Porous Media, 2018.
[15] Yuliang Su, Han Wang, Guanglong Sheng, et al. A model for Gas Transport in Organic Matter with Isolated Pores in Shale Gas Reservoirs[J]. Journal of Natural Gas Science and Engineering. 2018.
[16] Long Ren, Yuliang Su, Shiyuan Zhan, et al. Fully Coupled Fluid-Solid Numerical Simulation of Stimulated Reservoir Volume (SRV)-Fractured Horizontal Well with Multi-porosity Media in Tight Oil Reservoirs[J]. Journal of Petroleum Science and Engineering, 2018.
2017年
[1]Li B, Su Y, Wang W. Temporal scale-based production analysis of fractured horizontal wells with stimulated reservoir volume [J]. Journal of Natural Gas Science and Engineering, 2017. SCI
[2]Wang W, Shahvali M, Su Y. Analytical Solutions for a Quad-Linear Flow Model Derived for Multistage Fractured Horizontal Wells in Tight Oil Reservoirs[J]. Journal of Energy Resources Technology, 2017, 139(1): 012905. SCI
[3]Wang W, Yuan B, Su Y, et al. A composite dual-porosity fractal model for channel-fractured horizontal wells [J]. Engineering Applications of Computational Fluid Mechanics, 2017: 1-13. SCI
[4]Zhang Q, Su Y, Wang W, et al. Performance analysis of fractured wells with elliptical SRV in shale reservoirs [J]. Journal of Natural Gas Science and Engineering, 2017. SCI
[5]Guanglong Sheng; Yuliang Su; Wendong Wang et al. Application of Fractal Geometry in Evaluation of Effective Stimulated Reservoir Volume in Shale Gas Reservoirs [J]. Fractals, 2017, 25(4): 1740007. SCI
[6] 苏玉亮,盛广龙,王文东,等. 页岩气藏体积压裂有效改造体积计算方法[J]地球科学,2017,42(8):1314-1323. EI
[7]Zhou Z, Su Y, Wang W, et al. Application of the fractal geometry theory on fracture network simulation[J]. Journal of Petroleum Exploration and Production Technology, 2017, 7(2): 487-496. EI
[10]Zhang Q, Su Y, Wang W, et al. Apparent permeability for liquid transport in nanopores of shale reservoirs: Coupling flow enhancement and near wall flow[J]. International Journal of Heat and Mass Transfer, 2017, 115: 224-234. SCI
[11]Zhang Q, Su Y, Zhang M, et al. A multi-linear flow model for multistage fractured horizontal wells in shale reservoirs [J]. Journal of Petroleum Exploration and Production Technology, 2017, 7(3): 747-758. EI
[12]Sheng G.L.,Xu T.,Su Y Gou F.F., et al. Performance analysis of multi-fractured horizontal wells with complex fracture networks in shale gas reservoir [J] Journal of Porous Media, Accept. SCI
[1]Ren L, Su Y, Zhan S, et al. Modeling and simulation of complex fracture network propagation with SRV fracturing in unconventional shale reservoirs [J]. Journal of Natural Gas Science and Engineering, 2016, 28: 132-141. SCI
[2] 苏玉亮,盛广龙,王文东,闫怡,张璇.页岩气藏多重介质耦合流动模型[J].天然气工业,2016,36(02):52-59. EI
[3] Yuliang Su, Guanglong Sheng, Wendong Wang, Qi Zhang, Mingjing Lu, Long Ren. A mixed-fractal flow model for stimulated fractured vertical wells in tight oil reservoirs [J]. Fractals, 2016: 1650006. SCI
[4]Zhou Z, Su Y, Wang W, et al. Integration of microseismic and well production data for fracture network calibration with an L-system and rate transient analysis [J]. Journal of Unconventional Oil and Gas Resources, 2016, 15: 113-121. EI
[5]Yuan B, Wang W, Moghanloo R G, Su Yet al. Permeability Reduction of Berea Cores Owing to Nanoparticles Adsorption onto the Pore Surface: Mechanistic Modeling and Experimental Work[J]. Energy & Fuels, 2016. SCI
[6]Li M, Fan S, Su Y, et al. Numerical modeling of the physical parameters of the heated-water dissociation interface into the natural gas hydrates reservoir[J]. Applied Thermal Engineering, 2016, 106:49-55. SCI
[7]刘珊, 苏玉亮, 刘浩. 低渗透油藏水平井分段采油优化模型[J]. 计算力学学报, 2016, 33(6): 881-888. EI
[9]Zhou Z, Su Y, Wang W, et al. Application of the fractal geometry theory on fracture network simulation[J]. Journal of Petroleum Exploration and Production Technology, 2016, 7(2): 1-10. EI
[10]Yongmao H, Mingjing L, Chengshun D, Su Yet al. Experimental Investigation on Oil Enhancement Mechanism of Hot Water Injection in tight reservoirs[J]. Open Physics, 2016, 14(1): 703-713. SCI/EI
2015年
[1]Wendong Wang, Yuliang Su, Guanglong Sheng, Manuel Cossio. A Mathematical model considering complex fractures and fractal flow for pressure transient analysis of fractured horizontal wells in unconventional oil reservoirs. [J]. Journal of Natural Gas Science and Engineering, 2015, 23: 139-147. SCI
[2]Wendong Wang, Yuliang Su, Xiao Zhang, Guanglong Sheng, Long Ren. Analysis of the complex fracture flow in multiple fractured horizontal wells with the fractal tree-like network models [J]. Fractals, 2015: 1550014. SCI
[3]Bin Yuan, Yuliang Su, Rouzbeh Ghanbarnezhad Moghanloo, Zhenhua Rui, Wendong Wang, Yangyang Shang. A new analytical multi-linear solution for gas flow toward fractured horizontal wells with different fracture intensity. [J]. Journal of Natural Gas Science & Engineering, 2015, 23: 227-238. SCI
[4] Yuliang Su, Long Ren, Fankun Meng, Chen Xu, Wendong Wang. Theoretical Analysis of the Mechanism of Fracture Network Propagation with SRV Fracturing in Tight Oil Reservoirs[J] PloS one, 2015, 10(5): e0125319. SCI
[6] Su Y, Zhang Q, Wang W, et al. Performance analysis of a composite dual-porosity model in multi-scale fractured shale reservoir[J]. Journal of Natural Gas Science and Engineering, 2015, 26: 1107-1118. SCI
[7]Sheng G, Su Y, Wang W, et al. A multiple porosity media model for multi-fractured horizontal wells in shale gas reservoirs [J]. Journal of Natural Gas Science and Engineering, 2015, 27: 1562-1573. SCI
[8] 苏玉亮,王文东,赵广渊,袁彬,任龙.体积压裂缝网渗流特征与注水开发适配性研究[J].西南石油大学学报(自然科学版),2015,37(05):106-110. EI
[9]任龙, 苏玉亮,赵广渊.致密油藏非达西渗流流态响应与极限井距研究[J].中南大学学报(自然科学版),2015,46(05):1732-1738. EI
[14]任龙, 苏玉亮,郝永卯,张琪,孟凡坤,盛广龙.基于改造模式的致密油藏体积压裂水平井动态分析[J].石油学报,2015,36(10):1272-1279. EI
[15]Wang W, Shahvali M, Su Y. A semi-analytical fractal model for production from tight oil reservoirs with hydraulically fractured horizontal wells [J]. Fuel, 2015, 158: 612-618. SCI/EI
[16]Qi Zhang, Yuliang Su, Wendong Wang, Guanglong Sheng. A new semi-analytical model for simulating the effectively stimulated volume of fractured wells in tight reservoirs [J]. Journal of Natural Gas Science and Engineering, 2015,27:1834-1845 SCI/EI
[18]REN Long, Su Yuliang, XU Chen and MENG Fankun. Advances in the method of production performance prediction of SRV-fractured horizontal wells [J]. Acta Geologica Sinica (English Edition), 2015, 89(supp.1): 319-320.
[19] Su Y, Li B, Xu C, et al. Coupling Fluid Flow Model of Multiscale Fractures in Tight Reservoirs [J]. Procedia Engineering, 2015, 126: 353-357. EI
[20] 苏玉亮, 张琪, 张敏, 等. 页岩气多重复合模型流动规律研究[J]. 天然气地球科学, 2015,26(12): 2388-2394. EI
[21]Mingchuan Li, Shuanshi Fan, Yuliang Su, Justin Ezekiel, Mingjing Lu, Liang Zhang. Mathematical models of the heat-water dissociation of natural gas hydrates considering a moving Stefan boundary [J]. Energy,2015,90:202-207 SCI/EI
[3]杨建,张鸣远,李荣先,侯洪宁,苏玉亮.水平管气液两相泡状流入口段流速场的实验研究[J].西安交通大学学报,2004(03):254-257. EI
[4]张鸣远,杨建,朱宪然,张超杰,苏玉亮.水平管气液两相泡状流紊流结构的准三维测量[J].工程热物理学报,2004(04):619-621. EI
[5]Jian Y, Zhang M, Zhang C, Su Y, et al. Quasi 3-D measurements of turbulence structure in horizontal air–water bubbly flow [J]. Nuclear Engineering & Design, 2004, 227(3):301-312. SCI/EI
2003年
[1]路士华,牛乐琴,苏玉亮,党庆涛,李东霞.油层出砂导致地层伤害数值模拟研究[J].中国矿业大学学报,2003(04):124-127. EI
[5]彭苏萍,陈玉祥,苏玉亮,孟昭平.层状砂岩油藏周期注水动态模拟[J].中国矿业大学学报,2003,32(01):11-14. EI
[6]Su Yu-liang, Zhang Ming-yuan, Yang Jian, Zhang Chao-jie, Li Dong-xia. Chaotic Hydrodynamics in Horizontal Gas-Liquid Bubbly Flow[J]. Journal of Hydrodynamics,Ser,B, 2003,15(2):77-82. EI
[8]Investigation of Gas Penetration Depth During Gas Huff-N-Puff EOR Process in Unconventional Oil Reservoirs.Canada Unconventional Resources Conference, 13-14 March, 2018, Calgary, Alberta, Canada.
[9]A Novel Mehtod to Correct Steady-State Relative Permeability for Capillary End-Effects Based on Simulation Approach, 10th InterPore Annual Meeting and Jubilee.14-17 May 2018, New Orleans, USA.
[10]Productivity forecast model of vertical hydraulic fracturing well with varying conductivity in tight oil reservoir, 10th InterPore Annual Meeting and Jubilee.14-17 May 2018, New Orleans, USA.
[11]Method of Characterization of Complex Fracture Network with Combination of Microseismic using Fractal theory, SPE/IATMI Asia Pacific Oil & Gas Conference and Exhibition.17-19 October 2017, Jakarta, Indonesia.
[20]詹世远,苏玉亮,王文东,郝永卯,程安琪,盛广龙. Application of tracer simulation on water breakthrough in hydraulic fractures of multi-fractured horizontal wells[C]. 2016年中国科协年会--能源环境监测与管理国际会议,2016年9月,西安.
[21]姜妙伦,苏玉亮,李世栋,Torsæter Ole,盛广龙,詹世远.A Comprehensive Study of Nanoparticles Adsorption During Transport in Porous Media[C]. 2016年中国科协年会--能源环境监测与管理国际会议,2016年9月,西安.
[23]Nanoparticles Adsorption, Straining and Detachment Behavior and its Effects on Permeability of Berea Cores: Analytical Model and Lab Experiments, SPE Annual Technical Conference and Exhibition. 26-28 September, Dubai, UAE.
[24]A mathematical model for flow in multi-porosity media of shale gas reservoir, CHINA SHALE GAS 2015, Wuhan, China. 6-8 September 2015.
[25]Flow Behavior Analysis and Application of Complex-flow Model in Explosive Fracturing Well Using Fractal Theory SPE Middle East Oil & Gas Show and Conference, Manama, Bahrain, 8-11 March 2015.
[26]A Mathematical Model for Flow in Multi-Stage Hydraulic Fracture Systems using Fractal Theory, The 14th European Conference on the Mathematics of Oil Recovery, Catania, Sicily, Italy, 8-11 September 2014.
[33]Zhang K, Yao J, Su Y, et al. Screening and Evaluation of Preponderant Reserves in Oil Or Gas Fields[C]. 2010 International Conference on Computational and Information Sciences. IEEE Computer Society, 2010:274-277.
[37]Yang J, Zhang M, Zhang C,Su Y. Petroleum coke particle measurement in Illuminant flame by LDV in a veritical pipe[C]. Optical Technology and Image Processing fo rFluids and solids Diagnostics 2002. International Society for Optics and Photonics, 2003.