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[6] Öж«ÓÍÌïÁ÷ÌåÎïÐÔʵÑé¡¢²ÎÊý²â¶¨¼°Ë®ÇýÓÍʵÑé £¬ÖÐʯÓÍ¿±Ì½Ôº £¬2021.4-2021.12

[7] ÙªÂÞϵµ×Ë®ÓͲؿØË®ÖÊÁÏ»ù´¡ÊµÑéÑо¿ £¬ÖÐʯÓͳ¤ÇìÓÍÌï £¬2021.02-2021.12

[8] ³¬¸ßѹÁѺÛÐÔÖÂÃܻӷ¢ÓͲØÔçÆÚºÏÀí¿ª·¢ÊÖÒÕÑо¿ £¬ÖÐʯÓÍËþÀïľÓÍÌï £¬2020.10-2023.9

[9] ³¬µÍÉø-ÖÂÃÜÓÍ´¢²ã×¢ÌþÀàÆøÌåÔö²¹ÄÜÁ¿·½·¨¿ÉÐÐÐÔʵÑéÆÀ¼Û £¬ÖÐʯÓͳ¤ÇìÓÍÌï £¬ 2019.08-2020.10

[10] ÖÂÃÜÑÒÐĸßθßѹÉøÎü»úÀíÑо¿ £¬ÖÐʯÓÍ¿±Ì½Ôº £¬2019.10-2020.08

[11] ˮƽ¾®Í¬¾®·ì¼ä×¢²É¿ÉÐÐÐÔÑо¿ £¬ÖÐʯÓÍ´óÇìÓÍÌï £¬2018.11-2019.08

[12] ÌصÍÉøÆøÌïÉøÁ÷»úÀíÑо¿ £¬Öк£ÓÍÉϺ£·Ö¹«Ë¾ £¬2015.12-2016.12


Éç»áÓëѧÊõ¼æÖ°£º

[1] ¹ú¼ÒÁì¾üÆÚ¿¯¡¶Petroleum Science¡·¸±Ö÷±à

[2] Öйú¹¤³ÌÔºÔº¿¯¡¶Engineering¡·ÇàÄê±àί

[3] ½¹µãÆÚ¿¯¡¶Ê¯ÓÍ¿Æѧת´ï¡·Ö´Ðбàί

[4] ¹ú¼Ò±ê×¼»¯ÖÎÀíίԱ»áÄÜÔ´ÖÎÀí±ðÀëÒÕίԱ»á ίԱ

[5] ¹ú¼Ê±ê×¼»¯×éÖ¯£¨ISO£©ÊÂÇé×éר¼Ò

[6] Õã½­Ç廪³¤Èý½ÇÑо¿Ôº ¿Í×ùÑо¿Ô±

[7] ¹«º£²Ê´¬£¨±±¾©£©Ê¯¹¤Ñ§ÔºÑ§ÊõίԱ»á ίԱ

[8] ¹«º£²Ê´¬£¨±±¾©£©ÓÍÆøÌ↑·¢Ñ§¿ÆѧÊõ´ø¶¯ÈËÖúÀí

[9] ½ÌÓý²¿²©Ê¿ÂÛÎÄÆÀÉóר¼Ò

[10] ¹ú¼Ò×ÔÈ»¿Æѧ»ù½ðÏîÄ¿ÉóÆÀר¼Ò

[11] ÃÀ¹úʯÓ͹¤³Ìʦѧ»á »áÔ±


´ú±íÐÔÆÚ¿¯ÂÛÎÄ£º

[1] Numerical study on natural gas injection with allied in-situ injection and production for improving shale oil recovery. Fuel, 2022.

[2] Experimental investigation on plugging performance of nanospheres in low-permeability reservoir with bottom water. Advances in Geo-Energy Research, 2022.

[3] Extraction of shale oil with supercritical CO2: Effects of number of fractures and injection pressure. Fuel, 2021.

[4] Applications of Artificial Intelligence in Oil and Gas Development. Archives of Computational Methods in Engineering, 2021.

[5] Experimental study on EOR performance of CO2-based flooding methods on tight oil. Fuel, 2021.

[6] Three-Dimensional Numerical Simulation of Multiscale Fractures and Multiphase Flow in Heterogeneous Unconventional Reservoirs with Coupled Fractal Characteristics. Geofluids, 2021.

[7] Determination of minimum near miscible pressure region during CO2 and associated gas injection for tight oil reservoir in Ordos Basin China. Fuel, 2020.

[8] Semi-analytical Modelling of Water Injector Test with Fractured Channel in Tight Oil Reservoir. Rock Mechanics and Rock Engineering, 2020.

[9] Feasibility Study of Improved Unconventional Reservoir Performance with Carbonated Water and Surfactant. Energy, 2019.

[10] Application of Cumulative-in-situ-injection-production Technology to Supplement Hydrocarbon Recovery Among Fractured Tight Oil Reservoirs: A Case Study in Changqing Oilfield £¬ China. Fuel, 2019.

[11] Interference well-test model for vertical well with double-segment fracture in a multi-well system. Journal of Petroleum Science and Engineering, 2019.

[12] Interference testing model of multiply fractured horizontal well with multiple injection wells. Journal of Petroleum Science and Engineering, 2019.

[13] Pressure-Transient Analysis of Water Injectors Considering the Multiple Closures of Waterflood-Induced Fractures in Tight Reservoir: Case Studies in Changqing Oilfield China. Journal of Petroleum Science and Engineering, 2019.

[14] A compositional model for CO2 flooding including CO2 equilibria between water and oil using the Peng-Robinson equation of state with the Wong-Sandler mixing rule. Petroleum Science, 2019.

[15] Simulation study of allied in-situ injection and production for enhancing shale oil recovery and CO2 emission control. Energies, 2019.

[16] Analytical interference testing analysis of multi-segment horizontal well. Journal of Petroleum Science and Engineering, 2018.

[17] An Innovative Model to Evaluate Fracture Closure of Multi-Fractured Horizontal Well In Tight Gas Reservoir Based on Bottom-Hole Pressure. Journal of Natural Gas Science and Engineering, 2018.

[18] A Novel Well-Testing Model to Analyze Production Distribution of Multi-Stage Fractured Horizontal Well. Journal of Natural Gas Science and Engineering, 2018.

[19] A Semianalytical Methodology to Diagnose the Locations of Underperforming Hydraulic Fractures Through Pressure-Transient Analysis in Tight Gas Reservoir. SPE Journal, 2017.

[20] The Physical Process and Pressure-Transient Analysis Considering Fractures Excessive Extension in Water Injection Wells. Journal of Petroleum Science and Engineering, 2017.

[21] Semi-Analytical Modeling for Water Injection Well in Tight Reservoir Considering the Variation of Waterflood-Induced Fracture Properties¨CCase Studies in Changqing Oilfield China. Journal of Petroleum Science and Engineering, 2017.

[22] A Semianalytical Approach to Estimate Fracture Closure and Formation Damage of Vertically Fractured Wells in Tight Gas Reservoir. Journal of Petroleum Science and Engineering, 2016.

[23] Investigation of Nanoparticle Adsorption During Transport in Porous Media. SPE Journal, 2015.

[24] Flow enhancement of water-based nanoparticle dispersion through microscale sedimentary rocks. Scientific Reports, 2015.

[25] Well testing interpretation method and application in triple©\layer reservoirs by polymer flooding. Materialwissenschaft Und Werkstofftechnik, 2015.

[26] Transport and retention of aqueous dispersions of superparamagnetic nanoparticles in sandstone. Journal of Petroleum Science and Engineering, 2014.

[27] ÁѺÛÐԷǾùÖÊÖÂÃÜ´¢²ã×Ô˳ӦӦÁ¦Ãô¸ÐÐÔÑо¿. ʯÓÍ×ê̽ÊÖÒÕ, 2022.

[28] ÖÂÃÜÉ°ÑÒÄæÏòÉøÎü×÷ÓþàÀëʵÑéÑо¿. Á¦Ñ§Ñ§±¨, 2021.

[29] ̼»¯Ë®ÇýÌá¸ß²ÉÊÕÂÊÑо¿Ï£Íû. ʯÓÍ¿Æѧת´ï, 2020.

[30] ÖÂÃÜÓͲØ̼»¯Ë®ÇýÌá¸ß²ÉÊÕÂÊÒªÁì. ´óÇìʯÓ͵ØÖÊÓ뿪·¢, 2019.

[31] ˮƽ¾®Í¬¾®×¢²ÉÊÖÒÕ. ´óÇìʯÓ͵ØÖÊÓ뿪·¢, 2019.

[32] ѹÁÑˮƽ¾®ÁѺۺÍˮƽ¾®Í²²»¹æÔò²úÓÍÊÔ¾®ÆÊÎö. ´óÇìʯÓ͵ØÖÊÓ뿪·¢, 2018.

[33] ÖÂÃÜÓͲض༶ѹÁѾ®Òì¾®Òì²½×¢²É¿ÉÐÐÐÔÑо¿. ʯÓÍ¿Æѧת´ï, 2018.

[34] ÄÜÔ´ÖÎÀíϵͳÆÀ¼ÛÖ¸±êÓëÓ¦ÓÃÏÖ×´ÆÊÎö. Öйú±ê×¼»¯, 2018.

[35] ÖÂÃÜÓͲض༶ѹÁÑˮƽ¾®Í¬¾®·ì¼ä×¢²É¿ÉÐÐÐÔ. ʯÓÍѧ±¨, 2017.

[36] ¶à¶ÎѹÁÑˮƽ¾®²»ÔȳƲúÓÍÊÔ¾®Ä£×Ó. ¹«º£²Ê´¬Ñ§±¨:×ÔÈ»¿Æѧ°æ, 2017.

[37] ISO50006¡¢ISO50015ÓëISO50047µÄ½ÏÁ¿Óë̽ÌÖ. ±ê×¼¿Æѧ, 2016.


´ú±íÐÔ¾Û»áÂÛÎÄ£º

[1] Application of inter-fracture injection and production in a cluster well to enhance oil recovery. SPE Annual Technical Conference and Exhibition, 2019.

[2] Allied in-situ injection and production for fractured horizontal wells to increase hydrocarbon recovery in tight oil reservoirs: a case study in Changqing Oilfield. International Petroleum Technology Conference, 2019.

[3] A Novel Multi-Well Interference Testing Model of a Fractured Horizontal Well and Vertical Wells. SPE Annual Technical Conference and Exhibition, 2018.

[4] Case Studies: Pressure-Transient Analysis for Water Injector with the Influence of Waterflood-Induced Fractures in Tight Reservoir. SPE Improved Oil Recovery Conference, 2018.

[5] Estimation of Non-Uniform Production Rate Distribution of Multi-Fractured Horizontal Well Through Pressure Transient Analysis: Model and Case Study. SPE Annual Technical Conference and Exhibition, 2017.

[6] A Novel Well Testing Inversion Method for Characterization of Non-Darcy Flow Behavior in Low Permeability Reservoirs. SPE Annual Technical Conference and Exhibition, USA, 2017.

[7] Successful Application of Well Testing and Electrical Resistance Tomography to Determine Production Contribution of Individual Fracture and Water-Breakthrough Locations of Multifractured Horizontal Well in Changqing Oil Field £¬ China. SPE Annual Technical Conference and Exhibition, 2017.

[8] Transport and Retention of Aqueous Dispersions of Paramagnetic Nanoparticles in Reservoir Rocks. SPE Improved Oil Recovery Symposium, 2010.


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[1] ¶¯Ì¬ÉøÎü×°ÖúÍÓÃÓÚ¶¯Ì¬ÉøÎüʵÑéµÄʵÑéÒªÁì. ZL201811482680.X £¬2022ÄêÊÚȨ

[2] ÓÃÓÚÈ·¶¨Í¨¹ýÝÍȡʵÑéÝÍÈ¡³öµÄÓÍÁ¿µÄÒªÁìºÍ×°ÖÃ. ZL201911215681.2 £¬2020ÄêÊÚȨ

[3] ¸ßθßѹÌõ¼þÏÂÇ¿»¯Ì¼»¯Ë®µÄÉøÎüϵͳ. ZL201711054256.0 £¬2020ÄêÊÚȨ

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[5] ˮƽ¾®¾®ÏÂÆøÒºÊèÉ¢¾®ÉÏ»Ø×¢²ÉÓÍϵͳ¼°ÆäÒªÁì. ZL201810032101.5 £¬2020ÄêÊÚȨ

[6] ˮƽ¾®¾®ÏÂÆøÒºÊèÉ¢»Ø×¢²ÉÓÍϵͳ¼°ÆäÒªÁì. ZL201810032637.7 £¬2020ÄêÊÚȨ

[7] ÉøÎüÝÍȡװÖü°ÉøÎüÝÍȡʵÑéÒªÁì. ZL201810980994.6 £¬2020ÄêÊÚȨ

[8] ¸ßθßѹÌõ¼þÏÂ̼»¯Ë®µÄÇýÌæϵͳ¼°ÆäÒªÁì. ZL201711046782.2 £¬2020ÄêÊÚȨ

[9] עˮÓÕ·¢Î¢ÁѺ۶þάÀ©Õ¹µÄÎïÀíÄ£ÄâʵÑéÒªÁì. ZL201710735940.9 £¬2019ÄêÊÚȨ

[10] À­Á´Ê½²¼·ìµÄ˫ѹÁÑˮƽ¾®Òì¾®Ò첽עˮ²ÉÓÍÒªÁì. ZL201710078828.2 £¬2019ÄêÊÚȨ

[11] ¶Ô³Æʽ²¼·ìµÄ·Ö×éÒì¾®Òì²½×¢CO2²ÉÓÍÒªÁì. ZL201710078827.8 £¬2019ÄêÊÚȨ

[12] ¶Ô³Æʽ²¼·ìµÄÒì¾®Òì²½×¢CO2²ÉÓÍÒªÁì. ZL201710078521.2 £¬2019ÄêÊÚȨ

[13] ¶à¼¶Ñ¹ÁÑˮƽ¾®·ì¼ä¾àÀëCO2Çý²ÉÓÍÒªÁì. ZL201610564574.0 £¬2018ÄêÊÚȨ

[14] ¶à¼¶Ñ¹ÁÑˮƽ¾®·ì¼ä¾àÀëעˮÍÌͲÉÓÍÒªÁì. ZL201610253549.0 £¬2018ÄêÊÚȨ

[15] ¶à¼¶Ñ¹ÁÑˮƽ¾®·ì¼ä¾àÀëעˮÍÌͲÉÓÍÒªÁì. ZL201610195661.3 £¬2018ÄêÊÚȨ

[16] ˮƽ¾®¶à²ÎÊý×éºÏÕÒË®ÕÉÁ¿×°ÖÃ. ZL201510730997.0 £¬2018ÄêÊÚȨ

[17] ʹÓõض¯×ݲ¨Èö²¥Ê±¼äÕ¹ÍûµØ²ã¿×϶ѹÁ¦µÄÒªÁì. ZL201510166143.4 £¬2017ÄêÊÚȨ


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