Non-ideal gas effect of gas storage inside confined pores: A case study of Yongye shale

被引:1
作者
Wang, Gang [1 ]
Ma, Yiwei [2 ]
Zhang, Wenjun [1 ]
Chen, Wei [1 ]
Yang, Yunfeng [3 ]
机构
[1] Soochow Univ, Sch Energy, Suzhou 215006, Peoples R China
[2] Chinese Peoples Liberat Army, Troops 63921, Beijing 100094, Peoples R China
[3] Sinopec, Sinopec Petr Explorat & Prod Res Inst, Wuxi Res Inst Petr Geol, Wuxi 214126, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
Shale gas; Non-ideal gas effect; Gas content; Sichuan Basin; NORTHEASTERN BRITISH-COLUMBIA; SOUTHERN SICHUAN BASIN; PHASE-BEHAVIOR; MARINE SHALE; ADSORPTION; NANOPORES; POROSITY; FLUID; PART; SUBSTANCES;
D O I
10.1016/j.jngse.2021.104278
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
Unlike conventional reservoirs, the phase behavior of gas in shale formations rich in nanopores is no longer the same as that in bulk regions because of the non-ideal gas effect. To investigate the role of the non-ideal gas effect introduced by nanopores, gas content distribution along the burial depth (3772 m-3872 m) of one of the Yongye shale formations was analyzed according to its pore properties of fresh shale core samples. It is found that gas content is not uniformly distributed along the burial depth and it has a similar distribution trend with the specific pore volume and specific surface area, especially with those of mesopores and micropores. In addition, the specific volumes of micropores and mesopores are more significant in organic-rich pores obtained from the burial depth of 3805 m-3870 m, where a large amount of gas was found. Since the non-ideal gas effect (i.e., critical temperature and pressure shift) becomes obvious in pores with diameters of less than 10 nm, more gas is stored in the shale matrix with more micropores and mesopores. Compared with the case without considering the nonideal gas effect, the gas content of the shale formation (with burial depth from 3805 m to 3870 m) under geological conditions increases significantly. A better understanding of the non-ideal gas effect in nanopores may enable a more accurate assessment of the gas-in-place content of shale reservoirs.
引用
收藏
页数:17
相关论文
共 50 条
[31]   A Novel Method for Calculating Diffusion Coefficient of Shale Gas Reservoirs: A Case Study of Longmaxi Formation in Weiyuan Area, Sichuan Basin, China [J].
Wang, Guozhen ;
Jiang, Zhenxue ;
Gong, Houjian ;
Shi, Yuguang ;
He, Shijie ;
Miao, Huan .
APPLIED SCIENCES-BASEL, 2023, 13 (12)
[32]   A new method for evaluating tridimensional development effect of shale gas horizontal wells based on complex fracture network simulation: A case study of Longmaxi Formation shale gas in the southern Sichuan Basin [J].
Wang J. ;
Jia A. ;
Wei Y. ;
Wang J. ;
Huang X. ;
Li L. ;
Yu W. .
Natural Gas Industry, 2022, 42 (08) :175-189
[33]   Characterization of Nanoscale Pores in Tight Gas Sandstones Using Complex Techniques: A Case Study of a Linxing Tight Gas Sandstone Reservoir [J].
Lyu, Chaohui ;
Zhong, Liguo ;
Ning, Zhengfu ;
Wang, Qing ;
Cole, David R. .
GEOFLUIDS, 2021, 2021
[34]   Pore-scale study of non-ideal gas dynamics under tight confinement considering rarefaction, denseness and molecular interactions [J].
Shan, Baochao ;
Chen, Songze ;
Guo, Zhaoli ;
Wang, Peng .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2021, 90
[35]   Gas storage and controlling factors in an over-mature marine shale: A case study of the Lower Cambrian Lujiaping shale in the Dabashan arc-like thrust-fold belt, southwestern China [J].
Han, Hui ;
Zhong, Ningning ;
Ma, Yong ;
Huang, Caixia ;
Wang, Qi ;
Chen, Shijia ;
Lu, Jungang .
JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2016, 33 :839-853
[36]   WALL FREE ENERGY BASED POLYNOMIAL BOUNDARY CONDITIONS FOR NON-IDEAL GAS LATTICE BOLTZMANN EQUATION [J].
Liu, Lin ;
Lee, Taehun .
INTERNATIONAL JOURNAL OF MODERN PHYSICS C, 2009, 20 (11) :1749-1768
[37]   Study on the optimal design of volume fracturing for shale gas based on evaluating the fracturing effect-A case study on the Zhao Tong shale gas demonstration zone in Sichuan, China [J].
Lin, Yongxue ;
Liu, Shanyong ;
Gao, Shuyang ;
Yuan, Yuan ;
Wang, Jia ;
Xia, Siqi .
JOURNAL OF PETROLEUM EXPLORATION AND PRODUCTION TECHNOLOGY, 2021, 11 (04) :1705-1714
[38]   The role of the residual bitumen in the gas storage capacity of mature lacustrine shale: A case study of the Triassic Yanchang shale, Ordos Basin, China [J].
Xiong, Fengyang ;
Jiang, Zhenxue ;
Chen, Jianfa ;
Wang, Xiangzeng ;
Huang, Zhilong ;
Liu, Guoheng ;
Chen, Feiran ;
Li, Yirun ;
Chen, Lei ;
Zhang, Lixia .
MARINE AND PETROLEUM GEOLOGY, 2016, 69 :205-215
[39]   Prediction of gas production potential based on machine learning in shale gas field: a case study [J].
Zhai, Shuo ;
Geng, Shaoyang ;
Li, Chengyong ;
Gong, Yufeng ;
Jing, Min ;
Li, Yao .
ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2022, 44 (03) :6581-6601
[40]   Shale gas potential of Eocene shale of Agbada Formation: a paradigm shift in gas resource perception—a case study of the Niger Delta [J].
Namdie Joseph Inyang ;
Okechukwu Ebuka Agbasi ;
Sunday Edet Etuk ;
Casmir C. Zanders Akaolisa ;
Ubong Williams Robert .
Arabian Journal of Geosciences, 2022, 15 (12)