Title :
Scientific and engineering overview of the NASA Dual-Frequency Dual-Polarized Doppler Radar (D3R) system for GPM Ground Validation
Author :
Chandrasekar, V. ; Schwaller, Mathew ; Vega, Manuel ; Carswell, James ; Mishra, Kumar Vijay ; Meneghini, Robert ; Nguyen, Cuong
Author_Institution :
Colorado State Univ., Fort Collins, CO, USA
Abstract :
As an integral part of Global Precipitation Measurement (GPM) mission, Ground Validation (GV) program proposes to establish an independent global cross-validation process to characterize errors and quantify uncertainties in the precipitation measurements of the GPM program. A ground-based Dual-Frequency Dual-Polarized Doppler Radar (D3R) that will provide measurements at the two broadly separated frequencies (Ku- and Ka-band) is currently being developed to enable GPM ground validation, enhance understanding of the microphysical interpretation of precipitation and facilitate improvement of retrieval algorithms. The first generation D3R design will comprise of two separate co-aligned single-frequency antenna units mounted on a common pedestal with dual-frequency dual-polarized solid-state transmitter. This paper describes the salient features of this radar, the system concept and its engineering design challenges.
Keywords :
Doppler radar; polarisation; radar antennas; D3R; GPM; antenna; dual frequency dual polarized Doppler radar; dual-frequency radar; global precipitation measurement; ground validation; microphysical interpretation; retrieval algorithms; solid-state transmitter; Doppler radar; Frequency measurement; Meteorological radar; Radar antennas; Radar measurements; Spaceborne radar; D3R; Dual-frequency radar; GPM; TRMM; ground validation;
Conference_Titel :
Geoscience and Remote Sensing Symposium (IGARSS), 2010 IEEE International
Conference_Location :
Honolulu, HI
Print_ISBN :
978-1-4244-9565-8
Electronic_ISBN :
2153-6996
DOI :
10.1109/IGARSS.2010.5649440