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Selected References
2010
Effects of solar radiative heating on fiber optic cables used in auatic sttings Neilson, B.T., C.E. Hatch and S.W. Tyler. 2010 .. Effects of solar radiative heating on fiber optic cables used in aquatic settings. doi:10.1029/2009WR008354. Water Resources Res.
Estimation of Seepage Rates in a Losing Stream by Means of Fiber-Optic High-Resolution Vertical Temperature Profiling Vogt, T.; Philipp Schneider, Lisa Hahn-Woernle, Olaf A. Cirpka, Estimation of seepage rates in a losing stream by means of fiber-optic high-resolution vertical temperature profiling, Journal of Hydrology, Volume 380, Issues 1-2, 15 January 2010, Pages 154-164, ISSN 0022-1694, DOI: 10.1016/j.jhydrol.2009.10.033.
2009
Environmental Temperature Sensing Using Raman Spectra DTS Fiber-Optic Methods Tyler, S.W., J.S. Selker, M.B. Hausner, C.E. Hatch, T. Torgersen and S. Schladow.2009. Environmental temperature sensing using Raman spectra DTS fiber optic methods. Water Resources Res. doi:10.1029/2008WR007052 4(187):673-679.
Feasibility of Soil Moisture Estimation Using Passive Distributed Temperature Sensing Steele-Dunne, S. C., M. M. Rutten, D. M. Krzeminska, M. Hausner, S. W. Tyler, J. Selker, T. A. Bogaard, and N. C. van de Giesen (2010), Feasibility of soil moisture estimation using passive distributed temperature sensing, Water Resour. Res., 46, W03534, doi:10.1029/2009WR008272.
Feasibility of Soil Moisture Monitoring with Heated Fiber Optics Sayde , C., C. Gregory, M. Gil-Rodriguez, N. Tufillaro, S. Tyler, N. van de Giesen, M. English, R. Cuenca, and J. S. Selker (2010), Feasibility of soil moisture monitoring with heated fiber optics, Water Resour. Res., 46, W06201, doi:10.1029/2009WR007846.
Investigation of Aquifer-Estuary Interaction Using Wavelet Analysis of Fiber Optic Temperature Data R. D. Henderson, F. D. Day-Lewis, and C. F. Harvey (2009), Investigation of aquifer-estuary interaction using wavelet analysis of fiber-optic temperature data, Geophys. Res. Lett., 36, L06403, doi:10.1029/2008GL036926.
Locating Illicit Connections in Storm Water Sewers Using Fiber-Optic Distributed Temperature Sensing Hoes, O.A.C, R.P.S. Schilperoort, W.M.J. Luxemburg, F.H.L.R. Clemens and N. C. van de Giesen (2009), Locating illicit connections in storm water sewers using fiber-optic distributed temperature sensing, Water Research, doi:10.1016/j.watres.2009.08.020.
New User Facility for Environmental Sensing Tyler, S., J. Selker, 2009. New User Facility for Environmental Sensing. EOS Vol. 90 No. 50. p. 483.
Solar Radiative Heating of Fiber Optic Cables Used to Monitor Temperatures in Water Neilson, B. T., C. E. Hatch, H. Ban, and S. W. Tyler Solar Radiative Heating of Fiber Optic Cables Used to Monitor Temperatures in Water: Water Resour. Res., doi:10.1029/2009WR008354, in press.
2008
Fiber Optics for Environmental Sensing Selker, J.S., Fiber Optics for Environmental Sensing. Sensors, May 2008
Ground Surface Temperature Reconstructions: Using In-Situ Estimates for Thermal Conductivity Acquired with a Fiber-Optic Distributed Thermal Perturbation Sensor B. M. Freifeld, S. Finsterle, T. C. Onstott, P. Toole, and L. M. Pratt (2008), Ground surface temperature reconstructions: Using in situ estimates for thermal conductivity acquired with a fiber-optic distributed thermalperturbation sensor, Geophys. Res. Lett., 35, L14309, doi:10.1029/2008GL034762.
Processes Controlling the Thermal Regime of Saltmarsh Channel Beds Moffett, K., S. Tyler, T. Torgersen, M. Menon, J. Selker and S. Gorelick. 2008, Distributed temperature sensing of thermal trends and anomalies in the bed of an intertidal salt marsh and channel: The tidal thermal blanket effect. Environ. Science and Tech. 42(3); 671-676. DOI: 10.1021/es071309m.
Spatially Distributed Temperatures at the Base of Two Mountain Snowpacks Measured with Fiber-Optic Sensors Tyler, S.W., S. Burak, J. McNamara, A. Lamontagne, J. Selker and J. Dozier. 2008. Spatially distributed temperatures at the base of two mountain snowpacks measured with fiber-optic sensors. Journal of Glaciology. 54(187):673-679.
Taking the Temperature of Ecological Systems with Fiber Optics Selker, J. (2008) Taking the temperature of ecological systems with fiber optics, EOS, 89 (20).
2007
A Distributed Stream Temperature Model Using High Resolution Temperature Observations M. C. Westhoff, H. H. G. Savenije, W. M. J. Luxemburg, G. S. Stelling, N. C. van de Giesen, J. S. Selker, L. Pfister, and S. Uhlenbrook (2007) A distributed stream temperature model using high resolution temperature observations, Hydrol. Earth Syst. Sci., 11, 1469-1480.
Identifying Spatial Variability of Groundwater Discharge in a Wetland Stream Using a Distributed Temperature Sensor Lowry, C.S., J. F. Walker, R. J. Hunt, and M. P. Anderson (2007), Identifying spatial variability of groundwater discharge in a wetland stream using a distributed temperature sensor, Water Resour. Res., 43, W10408, doi:10.1029/2007WR006145.
2006
A Distributed Optical Fiber Sensor for Temperature Detection in Power Cables Yilmaz, Gunes; Karlik, Sait Eser, A distributed optical fiber sensor for temperature detection in power cables, Sensors and Actuators A 125 (2006) 148-155.
Distributed Fiber-Optic Temperature Sensing for Hydrologic Systems Selker, J.S., L. Thévenaz, H. Huwald, A. Mallet, W. Luxemburg, N. Van de Geisen, M. Stejskal, J. Zeman, M. Westoff and M.B. Parlange, (2006), Distributed fiber-optic temperature sensing for hydrologic systems, Water Resour. Res., 42, W12202, doi:10.1029/2006WR005326.
Fiber Optics Opens Window on Stream Dynamics J. Selker, N. van de Giesen, M. Westhoff, W. Luxemburg, and M. B. Parlange (2006), Fiber optics opens window on stream dynamics, Geophys. Res. Lett., 33, L24401, doi:10.1029/2006GL027979.
2003
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