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High‐frequency streamflow acquisition and bed level/flow angle estimates in a mountainous river using shallow‐water acoustic tomography
Authors:Kiyosi Kawanisi  Masoud Bahrainimotlagh  Mohamad Basel Al Sawaf  Mahdi Razaz
Institution:1. Department of Civil and Environmental Engineering, Institute of Engineering, Hiroshima University, Higashi, Hiroshima, Japan;2. Department of Civil and Environmental Engineering, Graduate School of Engineering, Hiroshima University, Higashi, Hiroshima, Japan;3. Department of Physical Oceanography, Memorial University of Newfoundland, St. John's, NL, Canada
Abstract:The acquisition of reliable discharge estimates is crucial in hydrological studies. This study demonstrates a promising acoustic method for measuring streamflow at high sampling rate for a long period using the fluvial acoustic tomography system (FATS). The FATS recently emerged as an innovative technique for continuous measurements of streamflow. In contrast to the traditional point/transect measurements of discharge, the FATS enables the depth‐averaged and range‐averaged flow velocity along the ray path to be measured in a fraction of a second. The field test was conducted in a shallow gravel‐bed river (0.9 m deep under low‐flow conditions, 115 m wide) for 1 month. The parameters (stream direction and bottom elevation) required for calculating the streamflow were deduced by a nonlinear regression to the discharge data from the well‐established rating curve. The cross‐sectional average velocities were automatically calculated from the acoustic data, which were collected on both riverbanks every 30 s. The FATS was connected to the internet so that the real‐time flow data could be obtained. The FATS captured discharge variations at a cut‐off frequency of approximately 70 day?1. The stream exhibited temporal discharge changes at multiple time scales ranging from a few tens of minutes to days. Copyright © 2016 John Wiley & Sons, Ltd.
Keywords:river discharge  streamflow  acoustic tomography  continuous measurement  gravel‐bed river
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