Published March 2018 | Version v1
Journal article

Continuous TDEM for monitoring shale hydraulic fracturing

  • 1. Yangtze University, Hubei Cooperative Innovation Center of Unconventional Oil and Gas (China)
  • 2. Petroleum Geophysics Engineering Company, SINOPEC, Jianghan Division (China)
  • 3. Geophysical Prospecting Company, CCDC (China)
  • 4. Chinese Academy of Sciences, Institute of Geology and Geophysics (China)

Description

Monitoring and delineating the spatial distribution of shale fracturing is fundamentally important to shale gas production. Standard monitoring methods, such as time-lapse seismic, cross-well seismic and micro-seismic methods, are expensive, timeconsuming, and do not show the changes in the formation with time. The resistivities of hydraulic fracturing fluid and reservoir rocks were measured. The results suggest that the injection fluid and consequently the injected reservoir are characterized by very low resistivity and high chargeability. This allows using of the controlled-source electromagnetic method (CSEM) to monitor shale gas hydraulic fracturing. Based on the geoelectrical model which was proposed according to the well-log and seismic data in the test area the change rule of the reacted electrical field was studied to account for the change of shale resistivity, and then the normalized residual resistivity method for time lapse processing was given. The time-domain electromagnetic method (TDEM) was used to continuously monitor the shale gas fracturing at the Fulin shale gas field in southern China. A high-power transmitter and multi-channel transient electromagnetic receiver array were adopted. 9 h time series of Ex component of 224 sites which were laid out on the surface and over three fracturing stages of a horizontal well at 2800 m depth was recorded. After data processing and calculation of the normalized resistivity residuals, the changes in the Ex signal were determined and a dynamic 3D image of the change in resistivity was constructed. This allows modeling the spatial distribution of the fracturing fluid. The model results suggest that TDEM is promising for monitoring hydraulic fracturing of shale.

Additional details

Identifiers

Publishing Information

Journal Title
Applied Geophysics (Online)
Journal Volume
15
Journal Issue
1
Journal Page Range
p. 26-34
ISSN
1993-0658

INIS

Country of Publication
China
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
50040597
Subject category
S58: GEOSCIENCES;
Descriptors DEI
DATA PROCESSING; DISPLACEMENT FLUIDS; FRACTURING FLUIDS; HYDRAULIC FRACTURING; NATURAL GAS FIELDS; RESERVOIR ROCK; SHALE GAS; SHALES; SIMULATION; SPATIAL DISTRIBUTION
Descriptors DEC
DISTRIBUTION; FLUIDS; FRACTURING; GASES; GEOLOGIC DEPOSITS; MINERAL RESOURCES; NATURAL GAS DEPOSITS; PROCESSING; RESOURCES; ROCKS; SEDIMENTARY ROCKS

Optional Information

Copyright
Copyright (c) 2018 Editorial Office of Applied Geophysics and Springer-Verlag GmbH Germany, part of Springer Nature