Complex Resistivity Anisotropy Response Characteristics of Wufeng-Longmaxi Formation Shale in Southern Sichuan

Electrical exploration has become an important means of shale gas reservoir exploration and evaluation, and is expected to play a key role in the later stages of reservoir fracturing and development. At present, the research on the electrical response characteristics of shale gas reservoirs and their relationship with reservoir parameters is extensive and in-depth, but there is little research on their complex resistivity anisotropy characteristics and influencing factors, which restricts petrophysical modeling and reservoir parameter prediction, and reduces the reliability of shale gas exploration and reservoir evaluation by electromagnetic methods. In this paper, shale samples from the Longmaxi Formation and the Wufeng Formation of shale gas wells in southern Sichuan were collected, the complex resistivity of 34 shales in bedding direction and vertical bedding direction were measured, and the induced polarization (IP) parameters of shales were extracted by inversion. The electrical anisotropy response characteristics under different temperature and pressure conditions were analyzed, and the influencing factors and laws of complex resistivity anisotropy of shales were revealed. Combined with the test results of shale porosity and permeability, the evaluation model of resistivity, polarizability and porosity and permeability parameters was established. The research results have formed a set of testing methods and analysis techniques for electrical anisotropy of shale reservoirs, which are mainly based on complex resistivity parameter testing. It is helpful to understand the electrical anisotropy characteristics of shale gas reservoirs in southern Sichuan; this will provide the theoretical and physical basis for shale gas reservoir evaluation and fracturing monitoring by electrical exploration.

[1]  Xinhua Ma Enrichment laws and scale effective development of shale gas in the southern Sichuan Basin , 2019, Natural Gas Industry B.

[2]  C. Potter Paleozoic shale gas resources in the Sichuan Basin, China , 2018, AAPG Bulletin.

[3]  Liangjun Yan,et al.  Continuous TDEM for monitoring shale hydraulic fracturing , 2018, Applied Geophysics.

[4]  Bing Zhang,et al.  Electrical properties of Longmaxi organic-rich shale and its potential applications to shale gas exploration and exploitation , 2016 .

[5]  Ma Yongsheng,et al.  Research on identification of organic-rich shales using seismic constrained time-frequency electromagnetic method , 2016 .

[6]  Zhou Yin The TEEM technology for quick identification of 'sweet spot' of shale gas and its applications , 2015 .

[7]  Liangjun Yan,et al.  Study on the induced polarization model in the exploration for shale gas in southern China , 2014 .

[8]  C. Torres‐Verdín,et al.  Complex conductivity tensor of anisotropic hydrocarbon-bearing shales and mudrocks , 2013 .

[9]  Z. Chun A study of exploration organic rich shales using Time-Frequency Electromagnetic Method(TFEM) , 2013 .

[10]  Wang Zong-yu GEOLOGICAL CONDITION OF SHALE GAS ACCUMULATION IN SICHUAN BASIN , 2008 .

[11]  Stephen C. Ruppel,et al.  Mississippian Barnett Shale: Lithofacies and depositional setting of a deep-water shale-gas succession in the Fort Worth Basin, Texas , 2007 .

[12]  Stanley H. Ward,et al.  Mineral discrimination and removal of inductive coupling with multifrequency IP , 1978 .