4.6 Article

Fracture propagation and induced strain response during supercritical CO2 jet fracturing

期刊

PETROLEUM SCIENCE
卷 19, 期 4, 页码 1682-1699

出版社

KEAI PUBLISHING LTD
DOI: 10.1016/j.petsci.2022.03.019

关键词

Supercritical carbon dioxide fracturing; Jet fracturing; Fracture morphology; Strain variation

资金

  1. National Natural Science Foundation of China [52004236]
  2. Sichuan Science and Technology Program [2021JDRC0114]
  3. Starting Project of SWPU [2019QHZ009]
  4. China Postdoctoral Science Foundation [2020M673285]
  5. Open Project Program of Key Laboratory of Groundwater Resources and Environment (Jilin University) , Ministry of Education [202005009KF]
  6. National Key Basic Research Program of China [2014CB239203]

向作者/读者索取更多资源

This study investigates fracture generation and strain variation during SC-CO2 jet fracturing through experiments and model analysis. The results demonstrate the significant influence of factors such as jet pressure and ambient pressure on fracture morphology and induced strain. The study also provides insights into the optimal jet distance and the relationship between jet pressure and nonlinear variation of strain.
To investigate fracture generation and strain variation during SC-CO2 (supercritical carbon dioxide) jet fracturing, the model of induced strain is established and the experiments are comprehensively studied. The influence factors are comprehensively explored, such as jet pressure, ambient pressure, etc. With the increasing jet pressure, the fracture morphology changes from parallel cracks to oblique cracks. Both the mass loss of specimen and CO2 absorption increase significantly, and the growth rate and minimum value of strain also rise exponentially. Under a high ambient pressure of 8.0 MPa, the main fractures mostly propagated from the surface to the bottom surface of the specimen. The maximum strain and the stable duration under higher ambient pressure are 1.5 times and 10 times, respectively, of the case under the ambient pressure of 5.0 MPa. The comparison shows that the optimal jet distance is 5-7 times the nozzle diameter, resulting in massive mass loss, large CO2 absorption, and peak strain. Moreover, the nonlinear variation of strain curve during jet pressurization is related to the type of rock and ambient pressure. These studies clearly show the relationship between the fracture morphology and induced strain, which are crucial for SC-CO2 fracturing in shale gas reservoirs. (c) 2022 The Authors. Publishing services by Elsevier B.V. on behalf of KeAi Communications Co. Ltd.

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