Rebecca Hochreutener
University of Rennes
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Featured researches published by Rebecca Hochreutener.
Water Resources Research | 2016
Maria Klepikova; Tanguy Le Borgne; Olivier Bour; Marco Dentz; Rebecca Hochreutener; Nicolas Lavenant
The characterization and modeling of heat transfer in fractured media is particularly challenging as the existence of fractures at multiple scales induces highly localized flow patterns. From a theoretical and numerical analysis of heat transfer in simple conceptual models of fractured media, we show that flow channeling has a significant effect on the scaling of heat recovery in both space and time. The late time tailing of heat recovery under channeled flow is shown to diverge from the TðtÞ / t 21:5 behavior expected for the classical parallel plate model and follow the scaling TðtÞ / 1=tðlog tÞ 2 for a simple channel modeled as a tube. This scaling, which differs significantly from known scalings in mobile-immobile systems, is of purely geometrical origin: late time heat transfer from the matrix to a channel corresponds dimensionally to a radial diffusion process, while heat transfer from the matrix to a plate may be considered as a one-dimensional process. This phenomenon is also manifested on the spatial scaling of heat recovery as flow channeling affects the decay of the thermal breakthrough peak amplitude and the increase of the peak time with scale. These findings are supported by the results of a field experimental campaign performed on the fractured rock site of Ploemeur. The scaling of heat recovery in time and space, measured from thermal breakthrough curves measured through a series of push-pull tests at different scales, shows a clear signature of flow channeling. The whole data set can thus be successfully represented by a multichannel model parametrized by the mean channel density and aperture. These findings, which bring new insights on the effect of flow channeling on heat transfer in fractured rocks, show how heat recovery in geothermal tests may be controlled by fracture geometry. In addition, this highlights the interest of thermal push-pull tests as a complement to solute tracers tests to infer fracture aperture and geometry.
Geophysical Research Letters | 2013
T. Read; Olivier Bour; V. F. Bense; T. Le Borgne; Pascal Goderniaux; Maria Klepikova; Rebecca Hochreutener; Nicolas Lavenant; V. Boschero
Journal of Hydrology | 2014
Maria Klepikova; Tanguy Le Borgne; Olivier Bour; Kerry Gallagher; Rebecca Hochreutener; Nicolas Lavenant
Journal of Hydrology | 2014
Clément Roques; Luc Aquilina; Olivier Bour; Jean-Christophe Maréchal; Benoît Dewandel; Hélène Pauwels; Thierry Labasque; Virginie Vergnaud-Ayraud; Rebecca Hochreutener
Applied Geochemistry | 2014
Thierry Labasque; Luc Aquilina; Virginie Vergnaud; Rebecca Hochreutener; Florent Barbecot; Gerolamo C. Casile
Water Resources Research | 2016
Maria Klepikova; Tanguy Le Borgne; Olivier Bour; Marco Dentz; Rebecca Hochreutener; Nicolas Lavenant
The EGU General Assembly | 2015
Eliot Chatton; Thierry Labasque; Luc Aquilina; Emmanuelle Petelet-Giraud; Lise Cary; Guillaume Bertrand; Rebecca Hochreutener
2013 GSA annual meeting | 2013
Olivier Bour; Tanguy Le Borgne; Nicolas Lavenant; Thierry Labasque; Laurent Longuevergne; Luc Aquilina; Rebecca Hochreutener; Joaquin Jimenez-Martinez; Philippe Davy
Archive | 2014
Olivier Bour; Tom Read; Tanguy Le Borgne; Bense Victor; Selker John; Rebecca Hochreutener; Nicolas Lavenant; Pascal Goderniaux; Maria Klepikova
AGU Fall Meeting 2013 | 2013
T. Read; Olivier Bour; John S. Selker; Tanguy Le Borgne; Victor F. Bense; Rebecca Hochreutener; Nicolas Lavenant