Using high-resolution distributed temperature sensing to quantify spatial and temporal variability in vertical hyporheic flux

被引:165
作者
Briggs, Martin A. [1 ]
Lautz, Laura K. [1 ]
McKenzie, Jeffrey M. [2 ]
Gordon, Ryan P. [1 ]
Hare, Danielle K. [1 ]
机构
[1] Syracuse Univ, Dept Earth Sci, Heroy Geol Lab 204, Syracuse, NY 13244 USA
[2] McGill Univ, Dept Earth & Planetary Sci, Montreal, PQ H3A 2A7, Canada
基金
美国国家科学基金会;
关键词
RESIDENCE TIME DISTRIBUTION; SOLUTE TRANSPORT; STREAM TEMPERATURE; TRANSIENT STORAGE; BED FORMS; WATER; SURFACE; EXCHANGE; HEAT; FLOW;
D O I
10.1029/2011WR011227
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Hyporheic flow can be extremely variable in space and time, and our understanding of complicated flow systems, such as exchange around small dams, has generally been limited to reach-averaged parameters or discrete point measurements. Emerging techniques are starting to fill the void between these disparate scales, increasing the utility of hyporheic research. When ambient diurnal temperature patterns are collected at high spatial resolution across vertical profiles in the streambed, the data can be applied to one-dimensional conduction-advection-dispersion models to quantitatively describe the vertical component of hyporheic flux at the same high spatial resolution. We have built on recent work by constructing custom fiber-optic distributed temperature sensors with 0.014 m spatial resolution that are robust enough to be installed by hand into the streambed, maintain high signal strength, and permit several sensors to be run in series off a single distributed temperature sensing unit. Data were collected continuously for 1 month above two beaver dams in a Wyoming stream to determine the spatial and temporal nature of vertical flux induced by the dams. Flux was organized by streambed morphology with strong, variable gradients with depth indicating a transition to horizontal flow across a spectrum of hyporheic flow paths. Several profiles showed contrasting temporal trends as discharge decreased by 45%. The high-resolution thermal sensors, combined with powerful analytical techniques, allowed a distributed quantitative description of the morphology-driven hyporheic system not previously possible.
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页数:16
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共 58 条
[1]   Heat as a ground water tracer [J].
Anderson, MP .
GROUND WATER, 2005, 43 (06) :951-968
[2]   Transient or steady-state? Using vertical temperature profiles to quantify groundwater-surface water exchange [J].
Anibas, Christian ;
Fleckenstein, Jan H. ;
Volze, Nina ;
Buis, Kerst ;
Verhoeven, Ronny ;
Meire, Patrick ;
Batelaan, Okke .
HYDROLOGICAL PROCESSES, 2009, 23 (15) :2165-2177
[3]   A comparison of fibre-optic distributed temperature sensing to traditional methods of evaluating groundwater inflow to streams [J].
Briggs, Martin A. ;
Lautz, Laura K. ;
McKenzie, Jeffrey M. .
HYDROLOGICAL PROCESSES, 2012, 26 (09) :1277-1290
[4]   Hyporheic Exchange in Mountain Rivers II: Effects of Channel Morphology on Mechanics, Scales, and Rates of Exchange [J].
Buffington, John M. ;
Tonina, Daniele .
GEOGRAPHY COMPASS, 2009, 3 (03) :1038-1062
[5]   Flow reversal over a natural pool-riffle sequence: A computational study [J].
Cao, ZX ;
Carling, P ;
Oakey, R .
EARTH SURFACE PROCESSES AND LANDFORMS, 2003, 28 (07) :689-705
[6]   Residence time of bedform-driven hyporheic exchange [J].
Cardenas, M. Bayani ;
Wilson, John L. ;
Haggerty, Roy .
ADVANCES IN WATER RESOURCES, 2008, 31 (10) :1382-1386
[7]   Impact of heterogeneity, bed forms, and stream curvature on subchannel hyporheic exchange [J].
Cardenas, MB ;
Wilson, JL ;
Zlotnik, VA .
WATER RESOURCES RESEARCH, 2004, 40 (08) :W083071-W0830713
[8]   Analyzing bank filtration by deconvoluting time series of electric conductivity [J].
Cirpka, Olaf A. ;
Fienen, Michael N. ;
Hofer, Markus ;
Hoehn, Eduard ;
Tessarini, Aronne ;
Kipfer, Rolf ;
Kitanidis, Peter K. .
GROUND WATER, 2007, 45 (03) :318-328
[9]   Delineating and quantifying ground water discharge zones using streambed temperatures [J].
Conant, B .
GROUND WATER, 2004, 42 (02) :243-257
[10]   INFLUENCE OF DIURNAL-VARIATIONS IN STREAM TEMPERATURE ON STREAMFLOW LOSS AND GROUNDWATER RECHARGE [J].
CONSTANTZ, J ;
THOMAS, CL ;
ZELLWEGER, G .
WATER RESOURCES RESEARCH, 1994, 30 (12) :3253-3264