Palaeopermeability anisotropy and geometrical properties of sealed-microfractures from micro-CT analyses: An open-source implementation
Author
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Gomila, Rodrigo
Author
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Arancibia, Gloria
Author
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Mery, Domingo
Author
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Nehler, Mathias
Author
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Bracke, Rolf
Author
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Morata Céspedes, Diego
Admission date
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2019-05-31T15:33:59Z
Available date
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2019-05-31T15:33:59Z
Publication date
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2019
Cita de ítem
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Micron 117 (2019) 29–39
Identifier
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09684328
Identifier
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10.1016/j.micron.2018.11.001
Identifier
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https://repositorio.uchile.cl/handle/2250/169697
Abstract
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Fault zone permeability and the real 3D-spatial distribution of the fault-related fracture networks are critical in the assessment of fault zones behavior for fluids. The study of the real 3D-spatial distribution of the micro fracture network, using X-ray micro-computed tomography, is a crucial factor to unravel the real structural permeability conditions of a fault-zone. Despite the availability of several commercial software for rock properties estimation from X-ray micro-computed tomography scanning, their high cost and lack of programmability encourage the use of open-source data treatment.
This work presents the implementation of a methodology flow for the quantification of both structural and geometrical parameters (fractures density, fractures aperture, fractures porosity, and fractures surface area), and the modeling of palaeopermeability of fault-related fractured samples, with focus in the proper spatial orientation of both the sample and the results. This is performed with an easy to follow step-by-step implementation, by a combination of open-source software, newly implemented codes, and numerical methods. This approach keeps track of the sample's spatial orientation from the physical to the virtual world, thus assessing any fault-related palaeopermeability anisotropy.