Borehole Heat Budget Calculator: A New Tool for the Quick Exploitation of High-Resolution Temperature Profiles by Hydrogeologists — Oak Academic Publishing
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Borehole Heat Budget Calculator: A New Tool for the Quick Exploitation of High-Resolution Temperature Profiles by Hydrogeologists
Geotop-UQAM, Department of Earth and Atmospheric Sciences, Montreal, Canada
,
Geotop-UQAM, Department of Earth and Atmospheric Sciences, Montreal, Canada
,
Spiez Laboratory, Federal Office for Civil Protection, Spiez, Switzerland
,
TechnoRem Inc., Laval, Canada
,
Envir’Eau-Puits Inc., Levis, Canada
,
CEA, DAM, DIF, F-91297 Arpajon, France
,
Department of Earth Sciences, GEOPS Laboratory, Paris-Saclay University, Paris-Sud University, CNRS, Orsay, France
,
Geotop-UQAM, Department of Earth and Atmospheric Sciences, Montreal, Canada
1 Geotop-UQAM, Department of Earth and Atmospheric Sciences, Montreal, Canada
2 Geotop-UQAM, Department of Earth and Atmospheric Sciences, Montreal, Canada
3 Spiez Laboratory, Federal Office for Civil Protection, Spiez, Switzerland
4 TechnoRem Inc., Laval, Canada
5 Envir’Eau-Puits Inc., Levis, Canada
6 CEA, DAM, DIF, F-91297 Arpajon, France
7 Department of Earth Sciences, GEOPS Laboratory, Paris-Saclay University, Paris-Sud University, CNRS, Orsay, France
8 Geotop-UQAM, Department of Earth and Atmospheric Sciences, Montreal, Canada
Distributed temperature sensing is known to provide sharp signals which are very efficient for mapping hydraulically active fractures in wellbores. High-resolution temperature sensing has specifically demonstrated its capacity to characterize very low flows in wellbores. But as sharp as they can be, temperature profiles are often difficult to decipher. The aim of the present work is to provide and to test the “Borehole Heat Budget Calculator” (BHB Calculator), which is implemented as a fast and easy to use tool for the quantitative analysis of depth-temperature profiles. The Calculator is suitable for most pumping and draining configurations, as the heat budget is generalized for modelling multidirectional flow systems within the same wellbore. The formatted worksheet allows the quick exploitation of temperature logs, and is applicable for the characterization of distributed fractures in long screened wellbores. Objectives of the heat modelling are to enhance the readability of complex depth-temperature data, as well as to quantify distribution of inflow intensities and temperatures with depth. The use of heat budget helps to clearly visualize how heat conduction and heat advection contributions are distributed along wellbores profiles. Calculations of inflow temperatures and their evolution through pumping duration is a prerequisite to infer about the nature of aquifer properties ( i.e. conduits, distributed or discrete fractures, porous media), as well as to give insight information about the mapping of effective flow paths draining the aquifer. The efficiency and limitations of the BHB Calculator are being tested through high-resolution temperature logging, along with complementary flowmetering and televiewing logging in fractured aquifers located in the St-Lawrence Lowlands, Quebec, Canada.
KeywordsFractured Bedrock AquiferHigh-Resolution Temperature LoggingHeat Budget ModellingLong Screened Wellbores
Irvine, D.J., Simmons, C.T., Werner, A.D. and Graf, T. (2015) Heat and Solute Tracers: How Do They Compare in Heterogeneous Aquifers? Ground Water, 53, 10-20. https://doi.org/10.1111/gwat.12146
Irvine, D.J., Cranswick, R.H., Simmons, C.T., Shanafield, M.A. and Lautz, L.K. (2015) The Effect of Streambed Heterogeneity on Groundwater-Surface Water Exchange Fluxes Inferred from Temperature Time Series. Water Resources Research, 51, 198-212. https://doi.org/10.1002/2014WR015769
Hare, D.K., Briggs, M.A., Rosenberry, D.O., Boutt, D.F. and Lane, J.W. (2015) A Comparison of Thermal Infrared to Fiber-Optic Distributed Temperature Sensing for Evaluation of Groundwater Discharge to Surface Water. Journal of Hydrology, 530, 153-166. https://doi.org/10.1016/j.jhydrol.2015.09.059
Taniguchi, M., Shimada, J., Tanaka, T., Kayane, I., Sakura, Y., Shimano, Y., Dapaah-Siakwan, S. and Kawashima, S. (1999) Disturbances of Temperature-Depth Profiles Due to Surface Climate Change and Subsurface Water Flow: 1. An Effect of Linear Increase in Surface Temperature Caused by Global Warming and Urbanization in the Tokyo Metropolitan Area, Japan. Water Resources Research, 35, 1507-1517. https://doi.org/10.1029/1999WR900009
Anderson, M.P. (2005) Heat as a Ground Water Tracer. Ground Water, 43, 951-968. https://doi.org/10.1111/j.1745-6584.2005.00052.x
Gosselin, C. and Mareschal, J.-C. (2003) Recent Warming in Northwestern Ontario Inferred from Borehole Temperature Profiles. Journal of Geophysical Research: Solid Earth, 108, B9, n/a-n/a. https://doi.org/10.1029/2003JB002447
Colombani, N., Giambastiani, B.M.S. and Mastrocicco, M. (2016) Use of Shallow Groundwater Temperature Profiles to Infer Climate and Land Use Change: Interpretation and Measurement Challenges. Hydrological Processes, 30, 2512-2524. https://doi.org/10.1002/hyp.10805
Kurylyk, B.L. and Irvine, D.J. (2016) Analytical Solution and Computer Program (FAST) to Estimate Fluid Fluxes from Subsurface Temperature Profiles. Water Resources Research, 52, 725-733. https://doi.org/10.1002/2015WR017990
Kurylyk, B.L., MacQuarrie, K.T. and Voss, C.I. (2014) Climate Change Impacts on the Temperature and Magnitude of Groundwater Discharge from Shallow, Unconfined Aquifers. Water Resources Research, 50, 3253-3274. https://doi.org/10.1002/2013WR014588
Pehme, P.E., Parker, B.L., Cherry, J.A. and Greenhouse, J.P. (2010) Improved Resolution of Ambient Flow through Fractured Rock with Temperature Logs. Ground Water, 48, 191-205. https://doi.org/10.1111/j.1745-6584.2009.00639.x
Klepikova, M.V., Le Borgne, T., Bour, O. and Davy, P. (2011) A Methodology for Using Borehole Temperature-Depth Profiles under Ambient, Single and Cross-Borehole Pumping Conditions to Estimate Fracture Hydraulic Properties. Journal of Hydrology, 407, 145-152. https://doi.org/10.1016/j.jhydrol.2011.07.018
Chatelier, M., Ruelleu, S., Bour, O., Porel, G. and Delay, F. (2011) Combined Fluid Temperature and Flow Logging for the Characterization of Hydraulic Structure in a Fractured Karst Aquifer. Journal of Hydrology, 400, 377-386. https://doi.org/10.1016/j.jhydrol.2011.01.051
Le Borgne, T., Paillet, F., Bour, O. and Caudal, J.P. (2006) Cross-Borehole Flowmeter Tests for Transient Heads in Heterogeneous Aquifers. Ground Water, 44, 444-452. https://doi.org/10.1111/j.1745-6584.2005.00150.x
Read, T., Bour, O., Selker, J.S., Bense, V.F., Borgne, T.L., Hochreutener, R. and Lavenant, N. (2014) Active-Distributed Temperature Sensing to Continuously Quantify Vertical Flow in Boreholes. Water Resources Research, 50, 3706-3713. https://doi.org/10.1002/2014WR015273
Coleman, T.I., Parker, B.L., Maldaner, C.H. and Mondanos, M.J. (2015) Groundwater Flow Characterization in a Fractured Bedrock Aquifer Using Active DTS Tests in Sealed Boreholes. Journal of Hydrology, 528, 449-462. https://doi.org/10.1016/j.jhydrol.2015.06.061
Bense, V., Read, T., Bour, O., Le Borgne, T., Coleman, T., Krause, S., Chalari, A., Mondanos, M., Ciocca, F. and Selker, J.S. (2016) Distributed Temperature Sensing as a Downhole Tool in Hydrogeology. Water Resource Research, 52, 9259-9273. https://doi.org/10.1002/2016WR018869
Zhang, Y., Jung, Y., Freifeld, B. and Finsterle, S. (2018) Using Distributed Temperature Sensing to Detect CO2 Leakage along the Injection Well Casing. International Journal of Greenhouse Gas Control, 74, 9-18. https://doi.org/10.1016/j.ijggc.2018.04.011
Li, Y., Zhu, W., Cheng, B., Nygaard, R. and Xiao, H. (2016) Laboratory Evaluation of Distributed Coaxial Cable Temperature Sensors for Application in CO2 Sequestration Well Characterization. Greenhouse Gases: Science and Technology, 6, 812-823. https://doi.org/10.1002/ghg.1609
Mao, Y., Zeidouni, M. and Duncan, I. (2017) Temperature Analysis for Early Detection and Rate Estimation of CO2 Wellbore Leakage. International Journal of Greenhouse Gas Control, 67, 20-30. https://doi.org/10.1016/j.ijggc.2017.09.021
Meyzonnat, G., Barbecot, F., Corcho-Alvarado, J.A., Tognelli, A., Zeyen, H., Mattei, A. and McCormack, R. (2018) High-Resolution Wellbore Temperature Logging Combined with a Borehole-Scale Heat Budget: Conceptual and Analytical Approaches to Characterize Hydraulically Active Fractures and Groundwater Origin. Geofluids, 2018, Article ID: 9461214. https://doi.org/10.1155/2018/9461214
Klepikova, M.V., Le Borgne, T., Bour, O., Gallagher, K., Hochreutener, R. and Lavenant, N. (2014) Passive Temperature Tomography Experiments to Characterize Transmissivity and Connectivity of Preferential Flow Paths in Fractured Media. Journal of Hydrology, 512, 549-562. https://doi.org/10.1016/j.jhydrol.2014.03.018
Globensky, Y. (1987) Géologie des Basses-Terres du Saint-Laurent. Rapport MM85-02, Direction générale de l’exploitation géologique et minérale, Québec, 70 p.
Carrier, M.-A., Lefebvre, R., Rivard, C., Parent, M., Ballard, J.-M., Benoit, N., Vigneault, H., Beaudry, C., Malet, X., Laurencelle, M., Gosselin, J.-S., Ladevèze, P., Thériault, R., Beaudin, I., Michaud, A., Pugin, A., Morin, R., Crow, H., Gloaguen, E., Bleser, J., Martin, A. and Lavoie, D. (2013) Portrait des ressources en eau souterraine en Montérégie Est, Québec, Canada. Projet réalisé conjointement par l’INRS, la CGC, l’OBV Yamaska et l’IRDA dans le cadre du Programme d’acquisition de connaissances sur les eaux souterraines, rapport final INRS R-1433, juin 2013, 319 p.