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Adjustment of wind-drift effect for real-time systematic error correction in radar rainfall data
Institution:1. Department of Soils, Federal University of Santa Maria, Av. Roraima 1000, Building 42 – Office 3311A, Postal 97105-900, Santa Maria, RS, Brazil;2. Large Lakes Observatory, University of Minnesota Duluth, Research Laboratory Building 109, 55812-3024, Duluth, MN, United States;1. Boise State University, Department of Geosciences, 1910 University Dr., Boise, ID 83705, USA;2. U.S. Forest Service, Rocky Mountain Research Station, 322 E. Front St., Suite 401, Boise, ID 83702, USA;3. Oak Ridge Institute for Science and Education, P.O. Box 117, Oak Ridge, TN 37831, USA;4. Agricultural Research Service, Northwest Watershed Research Center, 800 Park Blvd. Plaza IV, Suite 105, Boise, ID 83712, USA;1. Chemnitz University of Technology, Germany;2. Parsum GmbH, Reichenhainer Str. 34-36, D-09126 Chemnitz, Germany
Abstract:An effective bias correction procedure using gauge measurement is a significant step for radar data processing to reduce the systematic error in hydrological applications. In these bias correction methods, the spatial matching of precipitation patterns between radar and gauge networks is an important premise. However, the wind-drift effect on radar measurement induces an inconsistent spatial relationship between radar and gauge measurements as the raindrops observed by radar do not fall vertically to the ground. Consequently, a rain gauge does not correspond to the radar pixel based on the projected location of the radar beam. In this study, we introduce an adjustment method to incorporate the wind-drift effect into a bias correlation scheme. We first simulate the trajectory of raindrops in the air using downscaled three-dimensional wind data from the weather research and forecasting model (WRF) and calculate the final location of raindrops on the ground. The displacement of rainfall is then estimated and a radar–gauge spatial relationship is reconstructed. Based on this, the local real-time biases of the bin-average radar data were estimated for 12 selected events. Then, the reference mean local gauge rainfall, mean local bias, and adjusted radar rainfall calculated with and without consideration of the wind-drift effect are compared for different events and locations. There are considerable differences for three estimators, indicating that wind drift has a considerable impact on the real-time radar bias correction. Based on these facts, we suggest bias correction schemes based on the spatial correlation between radar and gauge measurements should consider the adjustment of the wind-drift effect and the proposed adjustment method is a promising solution to achieve this.
Keywords:Real-time bias correction  Mean local bias  Radar rainfall estimates  Wind drift  WRF
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