Affiliation:
1. Key Laboratory of Shale Gas and Geoengineering, Institute of Geology and Geophysics Chinese Academy of Sciences Beijing 100029 China
2. Innovation Academy for Earth Science Chinese Academy of Sciences Beijing 100029 China
3. College of Earth and Planetary Sciences University of Chinese Academy of Sciences Beijing 100029 China
Abstract
AbstractSupercritical carbon dioxide (ScCO2) fracturing has great advantages and prospects in both shale gas exploitation and CO2 storage. This paper reviews current laboratory experimental methods and results for sedimentary rocks fractured by ScCO2. The breakdown pressure, fracture parameters, mineral composition, bedding plane angle and permeability are discussed. We also compare the differences between sedimentary rock and granite fractured by ScCO2, ultimately noting problems and suggesting solutions and strategies for the future. The analysis found that the breakdown pressure of ScCO2 was reduced 6.52%–52.31% compared with that of using water. ScCO2 tends to produce a complex fracture morphology with significantly higher permeability. When compared with water, the fracture aperture of ScCO2 was decreased by 4.10%–72.33%, the tortuosity of ScCO2 was increased by 5.41%–70.98% and the fractal dimension of ScCO2 was increased by 4.55%–8.41%. The breakdown pressure of sandstone is more sensitive to the nature of the fracturing fluid, but fracture aperture is less sensitive to fracturing fluid than for shale and coal. Compared with granite, the tortuosity of sedimentary rock is more sensitive to the fracturing fluid and the fracture fractal dimension is less sensitive to the fracturing fluid. Existing research shows that ScCO2 has the advantages of low breakdown pressure, good fracture creation and environmental protection. It is recommended that research be conducted in terms of sample terms, experimental conditions, effectiveness evaluation and theoretical derivation in order to promote the application of ScCO2 reformed reservoirs in the future.
Reference95 articles.
1. Reservoir-condition pore-scale imaging of dolomite reaction with supercritical CO 2 acidified brine: Effect of pore-structure on reaction rate using velocity distribution analysis
2. Pore-scale contact angle measurements at reservoir conditions using X-ray microtomography
3. Brown D. 2000.A hot dry rock geothermal energy concept utilizing supercritical CO2instead of water. Twenty-Fifth Workshop on Geothermal Reservoir Engineering 1–6.
4. Fracture opening or self-sealing: Critical residence time as a unifying parameter for cement–CO2–brine interactions
5. Cai B. Li Q. andZhang X. 2021.China carbon dioxide capture utilization and storage (CCUS) annual report (2021)–China CCUS pathway study. Institute of Environmental Planning Ministry of Ecology and Environment Wuhan Institute of Geotechnics Chinese Academy of Sciences The Administrative Center for China's Agenda 21 (in Chinese).
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