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A new approach to estimating rainwater content by radar using propagation differential phase shiftAs microwaves propagate through rain, the rate of phase change with increasing distance is different depending upon whether the transmissions are polarized horizontally or vertically. This rate of change is the so-called specific propagation differential phase shift phi(sub DP). This paper demonstrates that at several frequencies and over a wide domain the ratio of phi(sub DP) to the rainwater content W is nearly linearly related to D(sub m), the mass-weighted mean drop size. An investigation of errors indicates that this new approach is likely to yield more accurate estimates of W than the other classical reflectivity factor Z, attenuation, or polarization techniques. The most accurate estimates of W are most likely at the highest frequency considered, 13.80 GHz. In lieu of such high-frequency measurements, these somewhat esoteric results are made more concrete through an analysis of 3-GHz radar measurements collected during the Convection and Precipitation Experiment in a tropical rainstorm in Florida. Among the principal advantages of using phi(sub DP) to measure rain are that an absolute calibration of the radar is no longer required and the estimates are decoupled from measurements of the radar reflectivity factor. Consequently, temporal and spatial structures of rain estimates do not simply mimic those of the reflectivity factor, as happens for classical estimation techniques using Z.
Document ID
19950031654
Acquisition Source
Legacy CDMS
Document Type
Reprint (Version printed in journal)
Authors
Jameson, A. R.
(Applied Research Corp. Landover, MD, United States)
Caylor, I. J.
(Colorado State Univ. Fort Collins, CO, United States)
Date Acquired
August 16, 2013
Publication Date
April 1, 1994
Publication Information
Publication: Journal of Atmospheric and Oceanic Technology
Volume: 11
Issue: 2 pt
ISSN: 0739-0572
Subject Category
Meteorology And Climatology
Accession Number
95A63253
Funding Number(s)
CONTRACT_GRANT: NSF ATM-90-14600
CONTRACT_GRANT: NAS5-30430
CONTRACT_GRANT: NSF ATM-90-15394
CONTRACT_GRANT: JPL-958437
Distribution Limits
Public
Copyright
Other

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