◎Research Interests · CO2 displacement and storage cross-scale simulation · Integration of intelligent fracturing and geological engineering · Wellbore reservoir coupling simulation · Multi-phase flow mechanism of porous media · CO2 monitoring and intelligent decision-making -------------------------------------------------------- Master/PhD program: 085706 Oil and Gas Engineering --------------------------------------------------------
Interested in intelligent oil and gas development, CO2 displacement and storage, seepage simulation of oil and gas fracturing and underground carbon and hydrogen storage are welcome to apply for master's/doctoral degree! Students who want to choose our Underground seepage and intelligent Carbon Storage team have a Strong Intellectual curiousness, continuous self-motivation and Strong Execution Ability, priority selection: · Academic pursuit: Priority is given to candidates who are willing to pursue a master's degree in our group or study abroad for a doctorate; · Related majors: Petroleum engineering, mathematics, mechanics, artificial intelligence, etc., with a solid course foundation and a GPA of no less than 3.6; · Sufficient engineering experience: with certain project experience and practical ability, it is preferred to have the experience of double innovation competition during the undergraduate/master period; · High English level: solid English literature reading, writing, listening and speaking skills; · Good personality: enterprising, full of energy, dare to meet challenges;
◎Courses Offered · Core course of International Class for graduate students: Advanced Reservoir Simulation · Required course for Petroleum Engineering majors (International students) : Fundamentals of Numerical Reservoir Simulation · Required Course for Petroleum Engineering majors (International students) : Reservoir Petrophysics · Professional course for international graduate students: Numerical Reservoir Simulation
◎Research Projects 【CO2 Enhanced Oil Recovery and geological storage】 · National Key Research and Development Plan, 2023YFB4104200, CO2 flooding and storage Safety Monitoring Technology, 2023/12-2027/11, in research, sub-project leader; · National Key Research and Development Plan, 2022YFE0129900, Key Technologies and Applications of CO2 flooding Storage Enhancement System and Injection and Production Optimization Control, 2023/01-2025/12, in research; · CNOOC General Research Institute, Study on the influence of Different Well patterns and spacing on gas drive recovery efficiency of offshore low permeability Reservoir, 2023/08-2024/04, Concluded; · Research Institute of Petroleum Exploration and Development, Research on Huff and Puff Mechanism of CO2/ Hydrocarbon gas-Chemical Additives complex System in Shale Reservoir, 2022/12-2023/12, Concluded; · Dagang Research Institute of Petroleum Exploration and Development, Research on Mechanism and Parameter Optimization of Enhanced Oil Recovery by gas Injection of shale oil in the second member of Guandong Hole, 2023/07-2023/12, Technical Responsibility, Conclusion; · petrochina Dagang Research Institute of Exploration and Development, Lower Limit of Utilization and Extraction Analysis and Test of Paleogene Shale Oil in Huanghua Depression, 2022/07-2022/12, Technical Responsibility, Conclusion; · Research Institute of Exploration and Development, petrochina, Experiment on the synergistic mechanism of huff, displacement and displacement of multi-medium Combination in Micro-scale pore throat of tight reservoir, 2022/04-2023/05, Chair, Conclusion; · petrochina Research Institute of Exploration and Development, Mechanism Experiment of Enhanced Oil Recovery with Different Injection Fluids of tight Oil, 2022/04-2023/05, Technical Responsibility, Conclusion; · Research on System Evaluation Methods for Enhanced Oil Recovery of Multi-type Tight Reservoirs, Research Institute of Petroleum Exploration and Development, petrochina, 2022/04-2024/12, Technical Responsibility, Conclusion; · Research Institute of Exploration and Development, Shengli Oilfield, Sinopec, Numerical Simulation of microscopic production mechanism of CO2 flooding, 2021/10-2022/12, Chair, Conclusion; · petrochina Science and Technology Major Project, Mechanism and Technology of Enhanced Oil Recovery by gas Injection in Deep clastic Reservoir, 2019/01-2023/12, Technical Responsibility, Conclusion; · Oil and Gas Technology Research Institute of Changqing Oilfield, petrochina, Optimization of hydraulic fracture Matching Mode for ultra-low permeability Reservoir Gas Injection Development, 2019/10-2020/10, Technical Responsibility, Conclusion; 【Percolation mechanics and numerical Simulation of Oil and Gas reservoirs】 · petrochina Tarim Oilfield, Configuration Characterization and Efficient development technical Countermeasures of fault-controlled fracture-cavern carbonate reservoir, 2023/06-2025/12, in research; · National Nature - Surface Project, 51674279, Shale Oil Multi-scale migration mechanism and numerical Simulation, 2017/01-2020/12, Participation, Conclusion; · National Major Science and Technology Project, 2017ZX05049-006, Southern Hubei Chang7 Shale Oil Flow Mechanism and Numerical Simulation Technology, 2017/01-2018/12, Participation, Conclusion; · Research on water production Characteristics and effluent rule of Songnan volcanic gas Reservoir, Northeast Branch of Sinopec, 2020/10-2022/10, Technical Responsibility, Conclusion; · petrochina Changqing Oil and Gas Technology Research Institute, Research on well Selection and layer selection Technology for repeated reconstruction of old Wells in gas fields, 2017/07-2018/07, Technical responsibility, Conclusion; · petrochina Changqing Oil and Gas Technology Research Institute, Research on Residual oil and stimulation potential between Wells in key blocks of old oil fields, 2017/07-2018/07, Technical responsibility, Conclusion;
【Nanoscale flow simulation 】 · National Nature Surface Project, 52274056, Shale Mixed wetting Multi-scale pore imbibition multiphase seepage simulation method, 2023/01-2026/12, Host, in progress; · China Natre-United Foundation, U22B2075, Study on Seepage Theory and Enhanced Oil Recovery Mechanism of Gulong Shale Oil Development, 2023/01-2026/12, Task, Research; · National Nature - Youth Project, 51804328, Evaluation of Shale Oil Micro-migration Mechanism and Fluidity, 2019/01-2021/12, Host, Conclusion; · Natural Science Foundation of Shandong Province, ZR2018BEE008, Fractal Characterization and Mobility of shale oil Flow, 2018/03-2020/12, Host, Conclusion; · Open Project of State Key Laboratory, GSYKY-B09-33, Experimental Simulation of Shale Gas Two-phase Flow under Complex Fracture Network conditions, 2018/08-2019/08, Host, Conclusion; · Post-Doctoral Project, 2016M602227, Study on microscopic seepage Mechanism and apparent Permeability of shale oil, 2016/09-2018/08, Chair, Conclusion; 【Geological engineering integration and intelligent fracturing direction】 · Sinopec Shengli Oilfield unveils the project, Research and development of continental shale functional fracturing fluid system, crude oil displacement mobilization mechanism and water-rock interaction mechanism, 2023/06-2024/12, in progress; · Research Institute of Exploration and Development of Changqing Oilfield, petrochina, Research on the combination flow law and development Technology Policy of tight oil Class III Reservoirs, 2023/06-2023/12, Technical Responsibility, Conclusion; · Research on Optimization method of Differentiated cluster Spacing for fracturing shale horizontal Wells, Changqing Oilfield Oil and Gas Technology Research Institute, petrochina, 2022/12-2023/12, Technical Responsibility, Conclusion; · Panjiang Coalbed Methane Development and Utilization Co., LTD., Guizhou Province, Research on Differentiated Stage transformation of horizontal Wells with complex coal body Structure, 2022/10-2023/12, Technical Responsibility, Conclusion; · Sinopec Shengli Research Institute of Exploration and Development, Coupled Flow Mathematical Model Test of Matrix shale Oil Volumetric fracturing, 2020/10-2022/12, Host, Conclusion; · petrochina Dagang Research Institute of Exploration and Development, Study on the beneficial development plan of shale oil in the second member of Kongdong Sag, 2020/09-2021/09, Technical Responsibility, Conclusion; · petrochina Changqing Oilfield Oil and Gas Technology Research Institute, Horizontal Well Volume re-fracturing Effect Evaluation and stimulation mechanism Research, 2020/01-2021/12, Technical responsibility, Conclusion; · National Major Science and Technology Project, 2017ZX05069, Volume Fracturing Development Mode and Parameter Optimization of tight oil Horizontal Wells, 2017/09-2019/12, Technical Responsibility, Conclusion;
◎Paper And Publications · CO2 Enhanced oil recovery and geological storage [1] Zhuang, X., Wang, W., Su, Y., Li, Y., Dai, Z., & Yuan, B., (2024). Spatio-temporal Sequence Prediction of CO2 Flooding and Sequestration Potential Under Geological and Engineering Uncertainties. Applied Energy,359,122691. doi.org/10.1016/j.apenergy.2024.122691 [2] Pore-scale Simulation of Multiphase Flow and Reactive Transport Processes Involved in Geologic Carbon Sequestration. Earth Science Review, Oct 2023, 104602, In Press. https://doi.org/10.1016/j.earscirev.2023.104602 [3] Simulation of CO2 dissolution reactions in saline aquifers using lattice Boltzmann method. Gas Science and Engineering, under review. [4] Pore-scale study of calcite dissolution during CO2-saturated brine injection for sequestration in carbonate aquifers. Gas Science and Engineering, 2023,114,204978. https://doi.org/10.1016/j.jgsce.2023.204978 [5] Assessment of CO2 Storage Potential in High water-cut Fractured Volcanic Gas Reservoirs. Fuel, 335, 126999, https://doi.org/10.1016/j.fuel.2022.126999 [6] Current Status and Development Trends of CO2 Storage with Enhanced Natural Gas Recovery (CS-EGR). Fuel, 346, 128555, https://doi.org/10.1016/j.fuel.2023.128555 [7] Semi-analytical evaluation for water-alternating-CO2 injectivity in tight oil reservoirs. Int. J. Oil, Gas and Coal Technology, 2020,24(1):62-84. · Nano-chip seepage experiment and pore-scale flow simulation technology: [1] Pseudopotential-based multiple-relaxation-time lattice Boltzmann model for multicomponent and multiphase slip flow.Adv. Geo-Energy Res., 2023, 9(2): 106-116. [2] Multi-component oil-water two phase flow in quartz and kerogen nanopores: A molecular dynamics study, Accept. [3] Hydrodynamic resistance of pore-throat structures and its effect on shale oil apparent permeability, Accept. [4] Molecular dynamics simulations of two-phase flow of n-alkanes with water in quartz nanopores. Chem Eng J, 2022, 430(2):132800. https://doi.org/10.1016/j.cej.2021.132800 [5] Relative permeability estimation of oil-water two-phase flow in shale reservoir, Pet Sci, 2022(online). https://doi.org/10.1016/j.petsci.2021.12.024 [6] Simulation of liquid flow transport in nanoscale porous media using lattice Boltzmann method.J Taiwan Inst Chem Eng, 2021, 121:128-138. https://doi.org/10.1016/j.jtice.2021.03.044 [7] A New Fractal Apparent Permeability Model for Liquid Flow in Tortuous Nanopores from Lattice Boltzmann Simulations to the Theoretical Model. Fractals. 2021,29(7):2150233-742.https://doi.org/10.1142/S0218348X21502339 [8] Investigations on Water Imbibing into Oil-Saturated Nanoporous Media: Coupling Molecular Interactions, the Dynamic Contact Angle, and the Entrance Effect. Ind Eng Chem Res,2021, 60 (4):1872-1883. https://doi.org/10.1021/acs.iecr.0c05118 [9] Integrated pore-scale characterization of mercury injection/imbibition and isothermal adsorption/desorption experiments using dendroidal model for shales. J Pet Sci Eng, 178:751-765. https://doi.org/10.1016/j.petrol.2019.03.054 [10] Pore-network extraction algorithm for shale accounting for geometry-effect. J Pet Sci Eng, 2019, 176:74-84. https://doi.org/10.1016/j.petrol.2019.01.046 [11] Enhanced water flow and apparent viscosity model considering wettability and shape effects. Fuel, 2019, 253:1351-1360. https://doi.org/10.1016/j.fuel.2019.05.098 [12] Relative permeability model of oil-water flow in nanoporous media considering multi-mechanisms. J Pet Sci Eng, 2019,183:106361. https://doi.org/10.1016/j.petrol.2019.106361 [13] Apparent permeability model for shale oil transport through elliptic nanopores considering wall-oil interaction. J Pet Sci Eng,2019,176:1041-1052. https://doi.org/10.1016/j.petrol.2019.02.027 · Flow mechanics and numerical simulation of oil and gas reservoirs [1] A Semi-analytical Model for Coupled Multi-zone Flow of Frac Hits in Shale Reservoirs, Applied Mathematical Modelling, Accept. [2] Zhang, Q., Wang, W., Su, Y., et al.,(2024) A Semi-Analytical Model for Coupled Flows in Stress-Sensitive Multi-Scale Shale Reservoirs with Fractal Characteristics. Petroleum Science, In Press. doi.org/10.1016/j.petsci.2023.10.003 [3] A review of analytical and semi-analytical fluid flow models for ultra-tight hydrocarbon reservoirs. Fuel, 2019,256:115737. https://doi.org/10.1016/j.fuel.2019.115737 [4] A new fractal approach for describing induced-fracture porosity/permeability/ compressibility in stimulated unconventional reservoirs. J Pet Sci Eng, 2019, 179:855-866. https://doi.org/10.1016/j.petrol.2019.04.104 · Integration of geological engineering and intelligent fracturing [1] An Unsupervised Machine Learning Based Double Sweet Spots Classification and Evaluation Method for Tight Reservoirs, Engineering Applications of Artificial Intelligence, underreview. [2] Zhang, Q., Wang, W., Su, Y., et al.,(2024) A Semi-Analytical Model for Coupled Flows in Stress-Sensitive Multi-Scale Shale Reservoirs with Fractal Characteristics. Petroleum Science, In Press. doi.org/10.1016/j.petsci.2023.10.003 [3] Zhuang, X., Wang, W., Su, Y., Yan, B., Li, Y., Li, L., & Hao, Y., (2024). Multi-objective optimization of reservoir development strategy with hybrid artificial intelligence method,Expert Systems with Applications,241,122707. doi.org/10.1016/j.eswa.2023.122707
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