A feasibility study on time-lapse controlled-source electromagnetic method for hydraulic fracturing monitoring of Well Eyangye-2HF in Yichang, Hubei Province, China

Author:

Sun Qilong1ORCID,Tan Handong1,Zhang Yunxiao2,Wan Wei3,Peng Rong4ORCID,Luo Weifeng2

Affiliation:

1. School of Geophysics and Information Technology, China University of Geosciences , Beijing 100083 , China

2. Oil and Gas Survey, China Geological Survey, Geophysical Technology Department , Beijing 100083 , China

3. School of Geophysics and Measurement-control Technology, East China University of Technology , Nanchang, 330013 , China

4. Institute of Mineral Resources, Chinese Academy of Geological Sciences , Beijing 100037 , China

Abstract

Abstract Hydraulic fracturing plays a crucial role in enhancing reserves and production of unconventional oil and gas resources. Injecting fracturing fluids into the ground to improve reservoirs also introduces the risk of inducing earthquakes; thus, monitoring the migration of these fluids is crucial. The microseismic positioning method determines the fracturing fluid by locating microseismic events generated by the fractured rock strata; however, this method is susceptible to errors. Low-resistivity subsurface fluids can directly change electromagnetic field signals, making the electromagnetic method a technically advantageous approach for monitoring the migration of hydraulic fracturing fluids. The monitoring test data of Well Eyangye-2HF show that the time-lapse controlled-source electromagnetic (CSEM) method is suitable for hydraulic fracturing and has good monitoring effects. The results of CSEM method can also compensate for deficiencies in microseismic monitoring. The electric field (Ex) observed using the CSEM method can directly predict the distribution edge of the fracturing fluid, and the anomalous zone of the Exrate of change is consistent with the fracturing-fluid injection parameters and microseismic monitoring results. The analysis of field data and forward simulation, based on electrical logging results, led to the conclusion that hydraulic fracturing operations can cause changes in the resistivity of the target layer and surrounding strata. These changes are attributed to the synergistic effects of formation stress, temperature, and the fracturing fluid. The electric-field changes observed using the CSEM method may be caused by multiple factors; however, use of time-lapse CSEM for monitoring hydraulic fracturing is still feasible.

Publisher

Oxford University Press (OUP)

Subject

Management, Monitoring, Policy and Law,Industrial and Manufacturing Engineering,Geology,Geophysics

Reference33 articles.

1. 3D CSEM modeling and time-lapse sensitivity analysis for subsurface storage;Bhuyian;Geophysics,2012

2. Monitoring of hydrocarbon reservoirs using marine CSEM method;Black,2009

3. Reservoir modeling in shale-gas reservoirs;Cipolla;SPE Reservoir Eval Eng,2010

4. Microseismic monitoring of Newberry Volcano EGS demonstration;Cladouhos,2013

5. Magnetotelluric monitoring of permeability enhancement at enhanced geothermal system project;Didana;Geothermics,2017

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