Dynamic development of hydrofracture

Ghani, I., Koehn, D. , Toussaint, R. and Passchier, C. W. (2013) Dynamic development of hydrofracture. Pure and Applied Geophysics, 170(11), pp. 1685-1703. (doi: 10.1007/s00024-012-0637-7)

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Publisher's URL: http://dx.doi.org/10.1007/s00024-012-0637-7

Abstract

Many natural examples of complex joint and vein networks in layered sedimentary rocks are hydrofractures that form by a combination of pore fluid overpressure and tectonic stresses. In this paper, a two-dimensional hybrid hydro-mechanical formulation is proposed to model the dynamic development of natural hydrofractures. The numerical scheme combines a discrete element model (DEM) framework that represents a porous solid medium with a supplementary Darcy based pore-pressure diffusion as continuum description for the fluid. This combination yields a porosity controlled coupling between an evolving fracture network and the associated hydraulic field. The model is tested on some basic cases of hydro-driven fracturing commonly found in nature, e.g., fracturing due to local fluid overpressure in rocks subjected to hydrostatic and nonhydrostatic tectonic loadings. In our models we find that seepage forces created by hydraulic pressure gradients together with poroelastic feedback upon discrete fracturing play a significant role in subsurface rock deformation. These forces manipulate the growth and geometry of hydrofractures in addition to tectonic stresses and the mechanical properties of the porous rocks. Our results show characteristic failure patterns that reflect different tectonic and lithological conditions and are qualitatively consistent with existing analogue and numerical studies as well as field observations. The applied scheme is numerically efficient, can be applied at various scales and is computational cost effective with the least involvement of sophisticated mathematical computation of hydrodynamic flow between the solid grains.

Item Type:Articles
Status:Published
Refereed:Yes
Glasgow Author(s) Enlighten ID:Koehn, Dr Daniel
Authors: Ghani, I., Koehn, D., Toussaint, R., and Passchier, C. W.
College/School:College of Science and Engineering > School of Geographical and Earth Sciences
Journal Name:Pure and Applied Geophysics
Publisher:Springer Verlag
ISSN:0033-4553
ISSN (Online):1420-9136
Copyright Holders:Copyright © 2013 Springer Verlag
First Published:First published in Pure and Applied Geophysics 170(11):1685-1703
Publisher Policy:Reproduced in accordance with the copyright policy of the publisher.

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