
韦世明,男,安徽阜阳市人,副教授,硕士生导师。2022年6月份获得中国石油大学(北京)油气井工程博士学位,2022年8月至今在理学院从事油气流动过程中的多场耦合计算、水力压裂机理及数值模拟方面的研究。以第一和通讯作者在SPE J、Physics of Fluids、Computers and Geotechnics、石油学报等行业顶级期刊发表学术论文40余篇,主持或参与多项国家科技重大专项、联合基金项目等国家级课题,及多项省部级项目。担任Petroleum Science、非常规油气等期刊青年编委,2022年获中国石油大学(北京)青年拔尖人才称号,2025年获北京市科协青年托举人才。
个人邮箱:weshiming@cup.edu.cn
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教育及工作经历
l 2025.07-至今:中国石油大学(北京),副教授、硕导,物理学、工程管理
l 2022.08-2025.07:中国石油大学(北京),讲师、硕导,物理学、工程管理
l 2021.04-2022.04:加拿大阿尔伯塔大学,联合培养,石油工程
l 2019.09-2022.06:中国石油大学(北京),博士,油气井工程
l 2016.09-2019.06:中国石油大学(北京),硕士,油气井工程
l 2012.09-2016.06:中国石油大学(北京),本科,石油工程、环境科学
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招生专业
l 硕士专业:物理学(学术型硕士);能源物理工程管理(专业型硕士)
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研究方向
l 研究方向1:长期从事非常规油气藏水力压裂理论与裂缝扩展数值模拟研究,围绕复杂储层压裂缝网形成机理、多场耦合作用下裂缝扩展规律以及压后导流能力演化等关键问题开展系统研究。
l 研究方向2:分布式光纤监测技术在油气藏开发中的应用研究,重点开展水力压裂全过程光纤多物理场响应机理、裂缝扩展动态监测及裂缝形态反演方法研究。
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代表性论文
[1] Shiming Wei, Chenyu Cao, Di Wang, et al. Exploring the Power of Neural Basis Expansion Analysis for Time- Series Forecasting Neural Network for Deep Coalbed Methane Production Prediction[J]. SPE J. 2025,30 (10): 6236-6248.
[2] Kaixuan Qiu, Shiming Wei*, et al. Numerical study of CO2 utilization technology in shale gas reservoir: Implications for enhancing gas recovery and optimizing fracture scheme[J]. Physics of fluids. 2025.
[3] 韦世明,考佳玮,金衍,等.基于COMSOL二次开发的流-固全耦合裂缝扩展数值模拟方法[J/OL].计算力学学报,2025.
[4] 方正,陈勉,李集,韦世明*等.自渗吸作用下深层页岩裂缝演化及力学特性[J].新疆石油地质,2025,46(02):208-216.
[5] 曾萍,韦世明,夏阳,等.考虑峰后脆性跌落的油页岩统计损伤本构——以鄂尔多斯盆地长7段为例[J].岩石力学与工程学报,2025,44(09):2408-2419.
[6] 韦世明,张亚洲,金衍. 超深高应力差储层近井筒裂缝扩展转向机理研究 [J]. 石油科学通报, 2024, 9 (06): 944-959.
[7] 韦世明,申屠俊杰,彭芬,等. 深部高应力储层裂缝动力学扩展机理研究 [J/OL]. 非常规油气, 1-11.
[8] 韦世明,郝亚龙,隋微波,陈勉. 不同倾角水力裂缝扩展的邻井光纤监测信号特征研究 [J]. 石油科学通报, 2024, 9 (05): 764-776.
[9] Shi Ming Wei; Yang Xia; Yan Jin; Xu Yang Guo;J ing Yu Zi; Kai Xuan Qiu; Si Yuan Chen. Production induced fracture closure of deep shale gas well under thermo-hydro-mechanical conditions[J].Petroleum Science,2024,21(03):1796-1813.
[10] Yan Jin, Shiming Wei ,Yang Xia, Kang Ping Chen. Viscous compressible flow from a semi-sealed porous system: Mechanisms and wave-mediated diffusion[J]. Physics of Fluids, 2024, 36(4).
[11] Shiming Wei; Kaixuan Qiu. Pressure Analysis of Onshore and Offshore Shale Gas Reservoirs under Constant-Rate Condition Considering Thin Sandstone Layer and Interlayer Cross-Flow[J].Journal of Marine Science and Engineering, 2024,12(3).
[12] Qiu Kaixuan; Wei Shiming*. Evaluating the effect of organic matter contained in shale on hydraulic fracturing of infill-well[J]. Geomechanics for Energy and the Environment,2024.
[13] 韦世明,金衍,夏阳,等. 自发渗吸对页岩油储层压裂后闷井的影响 [J]. 石油钻采工艺, 2023, 45 (06): 756-765.
[14] Qiu Kaixuan; Li Jia; Wei Shiming*. Analytical model for CO2 geo-sequestration in deep saline aquifers considering the effect of heterogeneity and matrix-fracture interaction[J].Gas Science and Engineering,2023,118.
[15] 韦世明,金衍,考佳玮等.钻井—压裂—生产全过程储层应力演化与加密井压裂优化[J].石油学报,2022,43(09):1305-1314+1324.
[16] Xia Yang; Wei Shiming; Deng Yinghao; Jin Yan. A new enriched method for extended finite element modeling of fluid flow in fractured reservoirs[J]. Computers and Geotechnics, 2022, 148: 104806.
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会议论文
[1] Shiming Wei, Baochao Gao, Yan Jin, Chunxi Yang, Fen Peng. Natural fracture opening pressure in the ultra-deep reservoir considering friction resistance along the hydraulic fracture[C]. 59th U.S. Rock Mechanics/Geomechanics Symposium. ARMA, 2025: ARMA-2025-0100.
[2] Shiming Wei, Lewang Sun, Guodong Zhang, Siyuan Chen, Yuan Liu. The Numerical Simulation Study of Bottomhole Pulse Fracturing Pressure Enhancement Effect[C]. 59th U.S. Rock Mechanics/Geomechanics Symposium. ARMA, 2025: ARMA-2025-0744.
[3] Peng F, Liu J, Peng J, Wei S M.*, et al. Analysis of the Causes of High Fracturing Pressure in the Kuqa Piedmont Reservoir Based on Stress-Strain Curves[C]. ARMA US Rock Mechanics/Geomechanics Symposium. ARMA, 2025.
[4] Liu Yuan, Wei Shiming*, Chen Shaohua, Xu Dan. Study on Cement Curing Process Monitoring Based on Fiber Bragg Grating Sensing[C]. 59th U.S. Rock Mechanics/Geomechanics Symposium. ARMA, 2025: ARMA-2025-0073.
[5] Xiuxia Sun, Xiao Zhang, Yan Jin, Shiming Wei, Yunhu Lu, Botao Lin. Synthesis and Performance Evaluation of a Multifunctional High-Performance Drag Reducer[C]. ADIPEC, 2025: SPE-229952-MS.
[6] Baochao Gao, Yan Jin, Shiming Wei*. Numerical Study of Fishbone Multi-Lateral Well Fracturing in the Deep Coalbed Methane Reservoir[C]. ARMA/DGS/SEG International Geomechanics Symposium. ARMA, 2024: ARMA-IGS-2024-0701.
[7] Chen S, Wei S.M*, Jin Y, et al. Numerical Simulation of Proppant Transportation in the Nonplanar Fracture[C]. ARMA/DGS/SEG International Geomechanics Symposium. ARMA, 2024: ARMA-IGS-2024-0627.
[8] Wei S.M, Jin Y., Xia Y., Zhang Y.Q. Quantitative study of the influence of organic-rich and natural fracture-rich regions on shale gas production[C]. IOP Conference Series: Earth and Environmental Science. IOP Publishing, 2020, 570(4): 042041. (会议优秀论文)
[9] Wei Shiming, Jin Yan, Huang Zhao, Xia Yang. Numerical simulation on hydro-mechanical coupling during gas transport in shale[C]. ARMA US Rock Mechanics/Geomechanics Symposium. ARMA, 2019: ARMA-2019-0404.
[10] Wei, S.M, Chen, M., Jin, Y., et al. Multi-stage fracturing and production induced stress field simulation[C]. ISRM International Symposium-Asian Rock Mechanics Symposium. ISRM, 2018: ISRM-ARMS10-2018-006.
[11] Wei Shiming, Chen Mian, Jin Yan, Lu Yunhu, Liu, Xing, Wen Hao. Numerical simulation of dynamic stress field of fractured horizontal well in carbonate reservoirs-in the production process[C]. ARMA International Discrete Fracture Network Engineering Conference. ARMA, 2018: D023S013R005.
[12] Wei, Shiming, Jin, Yan, Liu, Xing, and Yang Xia. The optimization of infill well fracturing using an integrated numerical simulation method of fracturing and production processes[C]. Abu Dhabi International Petroleum Exhibition and Conference. SPE, 2021: D012S136R001.
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发明专利
[1] 中国石油大学(北京). 施加双向围压的三轴连续划痕试验测试仪器和方法: 202310781062.X[P]. 2026.(授权)
[2] 中国石油大学(北京).控压返排方法、装置、设备及介质:202510613469.0[P].2026.(授权)
[3] 中国石油大学(北京). 射孔流量确定方法、装置、计算设备及机器可读存储介质: 202410028654.9[P]. 2024-11-29. (授权)
[4] 中国石油大学(北京). 一种套管弯曲载荷相似性实验方法及弯矩加载装置: 202411217384.2[P]. 2024-12-31.
[5] 中国石油大学(北京). 多尺度压裂物模仿真方法: 202410956973.6[P]. 2024-11-12.
[6] 中国石油大学(北京). 页岩断裂韧性确定方法、装置及存储介质: 202311245450.2[P]. 2024-01-30.
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科研项目
[1] 2025-2030:深层原位地应力测试解释技术及装备,新型油气勘探开发国家科技重大专项,副课题长/子课题负责人
[2] 2025-2030:非常规油气光纤监测技术,新型油气勘探开发国家科技重大专项,子课题负责人
[3] 2024-2026:缝洞型碳酸盐岩大斜度井裂缝非平面扩展机理研究,国家自然科学基金-青年科学基金,负责
[4] 2025-2028:三大盆地深层一超深层海相油气高效勘探开发基础研究--人工裂缝-天然缝洞作用原理及有效沟通方法,国家自然科学基金-企业创新发展联合基金,子课题负责人
[5] 2022-2025:超深层近井裂缝扩展转向流固耦合力学机理研究,中国石油大学(北京)-拔尖人才基金,负责
[6] 2025-2027: 碎软低渗煤层地面水平井分段造穴卸压抽采技术及工程示范,山西省科技重大专项计划“揭榜挂帅”项目,青年挂帅人
[7] 2023-2024:威荣井工厂压裂-生产耦合四维地应力场变化规律研究,中石化勘探院,负责
[8] 2022-2024: 压裂施工实时反演与裂缝评估软件模块开发,中石化工程院,负责
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学术兼职及荣誉
[1] 2022:中国石油大学(北京)青年拔尖人才
[2] 2023:中国岩石力学与工程学会科学技术进步特等奖
[3] 2025:北京市科协“高创计划”青年托举人才
[4] 北京市技术经理人
[5] Scientific Reports编委、Petroleum Science青年编委、非常规油气青年编委
[6] SPE J、Computers and Geotechnics、石油科学通报等审稿人
[7] 中国岩石力学与工程学会会员、SPE会员
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学位论文及学生指导情况
l 2026:刘媛(硕士)、王子越(本科)