Key Oil Content Parameter Correction of Shale Oil Resources: A Case Study of the Paleogene Funing Formation, Subei Basin, China

被引:25
作者
Zhang, Pengfei [3 ]
Lu, Shuangfang [1 ]
Lin, Zizhi [1 ]
Duan, Hongliang [2 ]
Chang, Xiangchun [3 ]
Qiu, Yongfeng [2 ]
Fu, Qian [2 ]
Zhi, Qi [1 ]
Wang, Junjie [1 ]
Huang, Hongsheng [1 ]
机构
[1] China Univ Petr East China, Sch Geosci, Qingdao 266580, Shandong, Peoples R China
[2] SINOPEC Jiangsu Oilfield Branch Co, Yangzhou 225009, Jiangsu, Peoples R China
[3] Shandong Univ Sci & Technol, Coll Earth Sci & Engn, Qingdao 266590, Shandong, Peoples R China
关键词
BOHAI BAY BASIN; DEPRESSION; ADSORPTION; MODEL;
D O I
10.1021/acs.energyfuels.2c00610
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Estimating shale oil resources is critical in shale oil exploration, and thepyrolysis parameterS1is a frequently used parameter to assess the oil amount in shale.However,S1loses some light and heavy hydrocarbons due to core storage conditionsand experimental technology, resulting in underestimating shale oil resources. In thispaper, a set of models were developed to correct the light and heavy hydrocarbonlosses forS1based on conventional and multistage Rock-Eval experiments onliquefrozen and room-temperature shales collected from the Funing Formation, SubeiBasin. Two types of correction models of heavy hydrocarbon loss for liquefrozen androom-temperature shales were determined by comparing the conventional andmultistage Rock-Eval experiments, respectively. The light hydrocarbon loss correctionmodel was obtained according to conventional Rock-Eval experiments on liquefrozen and room-temperature shales. Moreover, theestimation models of adsorbed, free, and movable amounts of oil were determined and validated by the oil saturation index (OSI)method. The results show that the total, adsorbed, free, and movable oil contents can be estimated well by these correction models.A case study from the Funing Formation, Subei Basin, indicates that the higher the content of total oil, the higher the amounts offree and movable oil, indicating that shale with more oil also has a more excellent mobile and developable potential. Organic matteris the main adsorbent for shale oil. Shales with TOC greater than 1.5% generally have greater free (movable) oil amounts, which maybe the optimal target for shale oil exploration and exploitation. This study provides an innovative approach to correct the keyparameters of shale oil resources, and thus, is crucial for the exploration and development of shale oil in the Funing Formation, SubeiBasin.
引用
收藏
页码:5316 / 5326
页数:11
相关论文
共 50 条
[31]   The Impact of Fractures on Shale Oil and Gas Enrichment and Mobility: A Case Study of the Qingshankou Formation in the Gulong Depression of the Songliao Basin, NE China [J].
Bai, Xuefeng ;
Li, Junhui ;
Liu, Wei ;
Li, Jijun ;
Fu, Xiuli ;
Su, Yangxin ;
Zheng, Qiang ;
Lu, Shuangfang ;
Zeng, Xu ;
You, Hang ;
Xu, Yingchao .
ENERGIES, 2024, 17 (17)
[32]   Potential resources of conventional, tight, and shale oil and gas from Paleogene Wenchang Formation source rocks in the Huizhou Depression [J].
Hu, Tao ;
Wu, Guanyun ;
Xu, Zhi ;
Pang, Xiongqi ;
Liu, Yang ;
Yu, Sa .
ADVANCES IN GEO-ENERGY RESEARCH, 2022, 6 (05) :402-414
[33]   Characterization of micro-nano pore networks in shale oil reservoirs of Paleogene Shahejie Formation in Dongying Sag of Bohai Bay Basin, East China [J].
Hu Qinhong ;
Zhang Yuxiang ;
Meng Xianghao ;
Li Zheng ;
Xie Zhonghuai ;
Li Maowen .
PETROLEUM EXPLORATION AND DEVELOPMENT, 2017, 44 (05) :720-730
[34]   Enrichment theory, exploration technology and prospects of shale oil in lacustrine facies zone of deep basin: a case study of the Paleogene in Huanghua depression, Bohai Bay Basin [J].
Zhao X. ;
Pu X. ;
Zhou L. ;
Jin F. ;
Han G. ;
Shi Z. ;
Han W. ;
Ding Y. ;
Zhang W. ;
Wang G. ;
Liu X. ;
Wang H. .
Shiyou Xuebao/Acta Petrolei Sinica, 2021, 42 (02) :143-162
[35]   Effect of petroleum chemical fraction and residual oil content in saline lacustrine organic-rich shale: A case study from the Paleogene Dongpu Depression of North China [J].
Zhu, Chen -Xi ;
Jiang, Fu-Jie ;
Zhang, Peng-Yuan ;
Zhao, Zhao ;
Chen, Xin ;
Wu, Yu-Qi ;
Chen, Yuan -Yuan ;
Wang, Wei ;
Song, Ze-Zhang ;
Hu, Tao ;
Xu, Tian -Wu ;
Zhou, Yong-Shui .
PETROLEUM SCIENCE, 2023, 20 (02) :649-669
[36]   Assessment of recoverable oil and gas resources by in-situ conversion of shale-Case study of extracting the Chang 73 shale in the Ordos Basin [J].
Hou, Lian-Hua ;
Luo, Xia ;
Lin, Sen-Hu ;
Li, Yong-Xin ;
Zhang, Li-Jun ;
Ma, Wei-Jiao .
PETROLEUM SCIENCE, 2022, 19 (02) :441-458
[37]   Evaluation method for resource potential of shale oil in the Triassic Yanchang Formation of the Ordos Basin, China [J].
Guo, Qiulin ;
Chen, Xiaoming ;
Liuzhuang, Xiaoxue ;
Yang, Zhi ;
Zheng, Man ;
Chen, Ningsheng ;
Mi, Jingkui .
ENERGY EXPLORATION & EXPLOITATION, 2020, 38 (04) :841-866
[38]   Mechanism for the formation of natural fractures and their effects on shale oil accumulation in Junggar Basin, NW China [J].
Zhang, Chen ;
Liu, Dong-Dong ;
Jiang, Zhen-Xue ;
Song, Yan ;
Luo, Qun ;
Wang, Xin .
INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2022, 254
[39]   Quantitative evaluation model of shale oil adsorption: A case study of the first member of Cretaceous Qingshankou Formation in northern Songliao Basin, NE China [J].
Li, Jinbu ;
Wang, Min ;
Lu, Shuangfang ;
Liu, Liang ;
Li, Ming ;
Zhang, Yuchen ;
Wang, Xin ;
Zhao, Xinbin ;
Zhang, Jinyou ;
Zhao, Ying .
PETROLEUM EXPLORATION AND DEVELOPMENT, 2023, 50 (05) :1137-1150
[40]   Natural fractures in deep continental shale oil reservoirs: A case study from the Permian Lucaogou formation in the Eastern Junggar Basin, Northwest China [J].
Liu, Guoping ;
Jin, Zhijun ;
Zeng, Lianbo ;
Huang, Liliang ;
Ostadhassan, Mehdi ;
Du, Xiaoyu ;
Lu, Guoqing ;
Zhang, Yunzhao .
JOURNAL OF STRUCTURAL GEOLOGY, 2023, 174