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SNO H+ : Modelling borehole flows from Distributed Temperature Sensing data to monitor groundwater dynamics in fractured media.

Fractured aquifers are known to be very heterogeneous with complex flow path geometries. Their characterization and monitoring remain challenging despite the importance to better understand their behavior at all spatial and temporal scales. Heat and correspondingly temperature data have gained much interest in recent years and are often used as a tracer for characterizing groundwater flows. In the current work,a fast computer code is developed using Ramey and Hassan and Kabir analytical solutions which converts the temperature profile to the flow rate profile along the borehole. The method developed is validated through numerical simulations. A global sensitivity study recognizes the media thermal properties as the most influential parameters. For testing the method in the field,fiber-optic distributed temperature sensing (FO-DTS) data were used to monitor the dynamic behavior of fractured aquifers at the borehole scale at the Ploemeur-Guidel field site in Brittany,France. DTS data are used to infer the flow rates in the different sections of a fractured wellbore (flow profile) and calculate the contribution of each fracture to the total flow. DTS data were acquired for about three days in three different hydraulic conditions corresponding to two different ambient flow conditions and one pumping condition. Flow profiling using distributed temperature data matches satisfactorily with results from heat-pulse flow metering performed in parallel for cross-checking. Moreover,flow profiling reveals the daily variations of ambient flow in this fractured borehole. Furthermore,it shows that during ambient flowing conditions,shallow and deep fractures contribute roughly equally to the total flow while during the pumping condition,the deepest fractures contribute more to the total flow,suggesting a possible reorganization of flow and hydraulic heads depending on the hydraulic conditions. Thus,although the proposed method (DTS data and proposed framework) may be costlier and is based on indirect characterization through temperature measurements,it provides real-time monitoring of complex fracture interactions and recharge processes in fractured media. Thus,this method allows for a full analysis of the temporal behavior of the system with a simple and fast analytical model. Furthermore,thanks to its narrow width,DTS can be used and installed in boreholes for long-term monitoring while heat-pulse flow metering may lead to head losses in the borehole and may not be always possible depending on some borehole conditions. One of the limitations of the approach proposed is the proper knowledge of the thermal properties of media required to infer the flow rate from the temperature. Nevertheless,surface rate measurement can be useful to constrain these properties and reduce the flow profiling uncertainty. Thus,the method proposed appears to be an interesting and complementary method for characterizing borehole flows and groundwater dynamics in fractured media such as for instance,monitoring the recharge dynamic

Simple

Date (Création)
2021-01-01
Identificateur
SNO-HPLUS-POULADI-ET-AL
Auteur
  UMR6118-Geosciences Rennes - PhD Student
campus de beaulieu , rennes , 35042 , France
https://geosciences.univ-rennes1.fr
Forme de la présentation
Carte numérique
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Auteur
  UMR6118-Geosciences Rennes - PhD Student
campus de beaulieu , rennes , 35042 , France
https://geosciences.univ-rennes1.fr
pointofcontact
  UMR6118-Geosciences Rennes - Generic address
campus de beaulieu , rennes , 35042 , France
https://hplus.ore.fr
Fréquence de mise à jour
Lorsque nécessaire
Nom
text/csv

Inspire

  • atmospheric conditions
  • environmental monitoring facilities
  • geology

Gemet

  • hydrology
  • geophysics
  • hydrography
  • groundwater

Continents, countries, sea regions of the world

  • france

  • brittany

Keywords

  • fractured media

  • borehole flow

  • flow profiling

  • distributed temperature sensing

  • heat pulse flow metering

Limitation d'utilisation

CC BY-NC-SA International 4.0

Contraintes d'accès
Restricted
Contraintes d'utilisation
Licence
Autres contraintes

Ask for the supplier for the accuracy,updating,integrity and completeness of the data. Access and use of H+ data policy are subject to H+ data policy,please see the agreements on H+ web site : http://hplus.ore.fr/public/Terms_and_agreements_Hplus_README_en.pdf

Langue
English
Jeu de caractères
Utf8
Catégorie ISO
  • Sciences de la terre, géosciences
  • Environnement
  • Eaux intérieures, Hydrographie
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Date de début
2019
Date de fin
2021
Nom du système de référence
EPSG / 4326
Ressource en ligne
Data on H+ data ( WWW:LINK-1.0-http--link )
Ressource en ligne
Information on H+ website ( WWW:LINK-1.0-http--link )
Ressource en ligne
Guidel_PZ26_FO_DTS_Pouladi ( WWW:DOWNLOAD-1.0-http--download )
Ressource en ligne
Guidel_Flowmetry_PZ26_Pouladi ( WWW:DOWNLOAD-1.0-http--download )
Ressource en ligne
publication ( WWW:LINK-1.0-http--link )

Modelling borehole flows from Distributed Temperature Sensing data to monitor groundwater dynamics in fractured media

Niveau
Jeu de données
Généralités sur la provenance

Measurements:

Identifiant de la fiche
SNO-HPLUS-POULADI-ET-AL XML
Langue
English
Jeu de caractères
Utf8
Identifiant de la fiche de métadonnées parent
3d54-4322-9af9-06e8701a78da
Type de ressource
Jeu de données
Date des métadonnées
2024-06-26T15:09:29
Nom du standard de métadonnées

ISO 19115:2003 Geographic information - Metadata

Version du standard de métadonnées

ISO 19115:2003

Point de contact
  OSUR Rennes -
campus de beaulieu , rennes , 35042 , France
Https://accueil.osuris.fr
Désignation de la donnée (URI)

SNO-HPLUS-POULADI-ET-AL

 
 

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Étendue spatiale

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Mots clés

Gemet
geophysics groundwater hydrography hydrology
Inspire
atmospheric conditions environmental monitoring facilities geology
Keywords
borehole flow distributed temperature sensing flow profiling fractured media heat pulse flow metering

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