中国页岩气勘探开发现状与优选方向

被引:124
作者
聂海宽 [1 ,2 ,3 ]
何治亮 [1 ,2 ,4 ]
刘光祥 [1 ,2 ,3 ]
张光荣 [5 ]
卢志远 [5 ]
李东晖 [1 ,2 ,3 ]
孙川翔 [1 ,2 ,3 ]
机构
[1] 页岩油气富集机理与有效开发国家重点实验室
[2] 中国石油化工集团公司页岩油气勘探开发重点实验室
[3] 中国石油化工股份有限公司石油勘探开发研究院
[4] 中国石油化工集团公司科技部
[5] 中国地质大学(北京)能源学院
关键词
页岩气; 龙马溪组; 富集规律; 主控因素; 勘探方向;
D O I
10.13247/j.cnki.jcumt.001096
中图分类号
TE37 [气田开发与开采]; P618.13 [石油、天然气];
学科分类号
082002 ; 0709 ; 081803 ;
摘要
中国已成为世界上第3个掌握页岩气勘探开发技术的国家.为了总结页岩气地质理论研究成果、勘探开发经验及教训,基于我国页岩气勘探开发实践和理论研究进展,在解剖商业开发页岩气田和典型页岩气钻井特征基础上,系统分析了富有机质页岩发育、储层类型和特征、页岩含气能力和含气量等基础地质理论的研究现状和关键科学问题,并对页岩气富集主控因素进行了分析.建议加强富有机质页岩发育、页岩成岩作用、有机-无机相互作用及优质储层形成机制、含气量的控制因素和定量评价、不同类型页岩气藏富集主控因素和分布规律等研究;提出了战略展开、战略突破和战略准备3个层次的勘探优选方向.战略展开区主要是四川盆地五峰组—龙马溪组深层页岩气和常压页岩气;战略突破区主要指四川盆地海相寒武系、海陆过渡相二叠系和陆相侏罗系;战略准备区主要包括四川盆地三叠系、鄂尔多斯盆地三叠系以及东部陆相盆地白垩系、古近系、新近系等.四川盆地五峰组—龙马溪组深层页岩气和常压页岩气面积和资源量较大,其中深层页岩气埋深大于3 500 m的面积为12.8×10~4 km2,钻井也取得良好效果,建议优先开展四川盆地五峰组—龙马溪组深层页岩气和常压页岩气开发技术攻关.
引用
收藏
页码:13 / 35
页数:23
相关论文
共 136 条
[1]  
页岩气聚集机理及其应用.[D].聂海宽.中国地质大学(北京).2010, 08
[2]  
Dissolution of marine shales and its influence on reservoir properties in the Jiaoshiba area; Sichuan Basin; China.[J].Hu Wang;Zhiliang He;Yonggui Zhang;Hanyong Bao;Kun Su;Zhiheng Shu;Conghui Zhao;Ruyue Wang;Tao Wang.Marine and Petroleum Geology.2019,
[3]  
Organic-matter-rich shales of China.[J].Caineng Zou;Rukai Zhu;Zhong-Qiang Chen;James G. Ogg;Songtao Wu;Dazhong Dong;Zhen Qiu;Yuman Wang;Lan Wang;Senhu Lin;Jingwei Cui;Ling Su;Zhi Yang.Earth-Science Reviews.2019,
[4]  
The shale gas “sweet window”: “The cracked and unbroken” state of shale and its depth range.[J].Zhiliang He;Shuangjian Li;Haikuan Nie;Yusong Yuan;Hu Wang.Marine and Petroleum Geology.2018,
[5]  
Dissolution pore types of the Wufeng Formation and the Longmaxi Formation in the Sichuan Basin; south China: Implications for shale gas enrichment.[J].Haikuan Nie;Chuanxiang Sun;Guangxiang Liu;Wei Du;Zhiliang He.Marine and Petroleum Geology.2018,
[6]  
Grain Assemblages and Diagenesis in the Vaca Muerta Formation (Jurassic-cretaceous); Neuquén Basin; Argentina.[J].Kitty L. Milliken;Robert M. Reed;Douglas K. McCarty;James Bishop;C.J. Lipinski;Timothy B. Fischer;Luisa Crousse;Hernan Reijenstein.Sedimentary Geology.2018,
[7]  
Source and seal coupling mechanism for shale gas enrichment in upper Ordovician Wufeng Formation - Lower Silurian Longmaxi Formation in Sichuan Basin and its periphery.[J].Zhijun Jin;Haikuan Nie;Quanyou Liu;Jianhua Zhao;Tao Jiang.Marine and Petroleum Geology.2018,
[8]  
Pore-types and pore-network evolution in Upper Devonian-Lower Mississippian Woodford and Mississippian Barnett mudstones: Insights from laboratory thermal maturation and organic petrology.[J].Lucy T. Ko;Stephen C. Ruppel;Robert G. Loucks;Paul C. Hackley;Tongwei Zhang;Deyong Shao.International Journal of Coal Geology.2018,
[9]  
Distinguishing kerogen and oil cracked shale gas using H; C-isotopic fractionation of alkane gases.[J].Quanyou Liu;Zhijun Jin;Xiaofeng Wang;Jizheng Yi;Qingqiang Meng;Xiaoqi Wu;Bo Gao;Haikuan Nie;Dongya Zhu.Marine and Petroleum Geology.2018,
[10]   Types and Origin of Nanoscale Pores and Fractures in Wufeng and Longmaxi Shale in Sichuan Basin and Its Periphery [J].
He, Zhiliang ;
Nie, Haikuan ;
Zhao, Jianhua ;
Liu, Weixin ;
Bao, Fang ;
Zhang, Wentao .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2017, 17 (09) :6626-6633