Deployment and Performance Analyses of High-Resolution Iowa XPOL Radar System during the NASA IFloodS Campaign

Author:

Mishra Kumar Vijay1234,Krajewski Witold F.125,Goska Radoslaw12,Ceynar Daniel12,Seo Bong-Chul12,Kruger Anton123,Niemeier James J.12,Galvez Miguel B.6,Thurai Merhala6,Bringi V. N.6,Tolstoy Leonid6,Kucera Paul A.7,Petersen Walter A.8,Grazioli Jacopo9,Pazmany Andrew L.10

Affiliation:

1. Iowa Flood Center, The University of Iowa, Iowa City, Iowa

2. IIHR–Hydroscience and Engineering, The University of Iowa, Iowa City, Iowa

3. Department of Electrical and Computer Engineering, The University of Iowa, Iowa City, Iowa

4. Department of Mathematics, The University of Iowa, Iowa City, Iowa

5. Department of Civil and Environmental Engineering, The University of Iowa, Iowa City, Iowa

6. Department of Electrical and Computer Engineering, Colorado State University, Fort Collins, Colorado

7. Research Applications Laboratory, National Center for Atmospheric Research, Boulder, Colorado

8. Wallops Flight Facility, NASA Goddard Space Flight Center, Wallops Island, Virginia

9. Environmental Remote Sensing Laboratory (LTE), École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland

10. ProSensing Inc., Amherst, Massachusetts

Abstract

Abstract This article presents the data collected and analyzed using the University of Iowa’s X-band polarimetric (XPOL) radars that were part of the spring 2013 hydrology-oriented Iowa Flood Studies (IFloodS) field campaign, sponsored by NASA’s Global Precipitation Measurement (GPM) Ground Validation (GV) program. The four mobile radars have full scanning capabilities that provide quantitative estimation of the rainfall at high temporal and spatial resolutions over experimental watersheds. IFloodS was the first extensive test of the XPOL radars, and the XPOL radars demonstrated their field worthiness during this campaign with 46 days of nearly uninterrupted, remotely monitored, and controlled operations. This paper presents detailed postcampaign analyses of the high-resolution, research-quality data that the XPOL radars collected. The XPOL dual-polarimetric products and rainfall are compared with data from other instruments for selected diverse meteorological events at high spatiotemporal resolutions from unprecedentedly unique and vast data generated during IFloodS operations. The XPOL data exhibit a detailed, complex structure of precipitation viewed at multiple range resolutions (75 and 30 m). The inter-XPOL comparisons within an overlapping scanned domain demonstrate consistency across different XPOL units. The XPOLs employed a series of heterogeneous scans and obtained estimates of the meteorological echoes up to a range oversampling of 7.5 m. A finer-resolution (30 m) algorithm is described to correct the polarimetric estimates for attenuation at the X band and obtain agreement of attenuation-corrected products with disdrometers and NASA S-band polarimetric (NPOL) radar. The paper includes hardware characterization of Iowa XPOL radars conducted prior to the deployment in IFloodS following the GPM calibration protocol.

Publisher

American Meteorological Society

Subject

Atmospheric Science

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