The microwave properties of simulated melting precipitation particles: sensitivity to initial melting

A simplified approach is presented for assessing the microwave response to the initial melting of realistically shaped ice particles. This paper is divided into two parts: (1) a description of the Single Particle Melting Model (SPMM), a heuristic melting simulation for ice-phase precipitation partic...

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Main Authors: B. T. Johnson, W. S. Olson, G. Skofronick-Jackson
Format: Article
Language:English
Published: Copernicus Publications 2016-01-01
Series:Atmospheric Measurement Techniques
Online Access:http://www.atmos-meas-tech.net/9/9/2016/amt-9-9-2016.pdf
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spelling doaj-c564ce76600c4efdbba1dfe97cc8c24f2020-11-24T21:28:25ZengCopernicus PublicationsAtmospheric Measurement Techniques1867-13811867-85482016-01-019192110.5194/amt-9-9-2016The microwave properties of simulated melting precipitation particles: sensitivity to initial meltingB. T. Johnson0W. S. Olson1G. Skofronick-Jackson2University of Maryland Baltimore County, Joint Center for Earth Systems Technology, Baltimore, MD, USAUniversity of Maryland Baltimore County, Joint Center for Earth Systems Technology, Baltimore, MD, USANASA Goddard Space Flight Center, Code 612, Greenbelt, MD, USAA simplified approach is presented for assessing the microwave response to the initial melting of realistically shaped ice particles. This paper is divided into two parts: (1) a description of the Single Particle Melting Model (SPMM), a heuristic melting simulation for ice-phase precipitation particles of any shape or size (SPMM is applied to two simulated aggregate snow particles, simulating melting up to 0.15 melt fraction by mass), and (2) the computation of the single-particle microwave scattering and extinction properties of these hydrometeors, using the discrete dipole approximation (via DDSCAT), at the following selected frequencies: 13.4, 35.6, and 94.0 GHz for radar applications and 89, 165.0, and 183.31 GHz for radiometer applications. These selected frequencies are consistent with current microwave remote-sensing platforms, such as CloudSat and the Global Precipitation Measurement (GPM) mission. Comparisons with calculations using variable-density spheres indicate significant deviations in scattering and extinction properties throughout the initial range of melting (liquid volume fractions less than 0.15). Integration of the single-particle properties over an exponential particle size distribution provides additional insight into idealized radar reflectivity and passive microwave brightness temperature sensitivity to variations in size/mass, shape, melt fraction, and particle orientation.http://www.atmos-meas-tech.net/9/9/2016/amt-9-9-2016.pdf
collection DOAJ
language English
format Article
sources DOAJ
author B. T. Johnson
W. S. Olson
G. Skofronick-Jackson
spellingShingle B. T. Johnson
W. S. Olson
G. Skofronick-Jackson
The microwave properties of simulated melting precipitation particles: sensitivity to initial melting
Atmospheric Measurement Techniques
author_facet B. T. Johnson
W. S. Olson
G. Skofronick-Jackson
author_sort B. T. Johnson
title The microwave properties of simulated melting precipitation particles: sensitivity to initial melting
title_short The microwave properties of simulated melting precipitation particles: sensitivity to initial melting
title_full The microwave properties of simulated melting precipitation particles: sensitivity to initial melting
title_fullStr The microwave properties of simulated melting precipitation particles: sensitivity to initial melting
title_full_unstemmed The microwave properties of simulated melting precipitation particles: sensitivity to initial melting
title_sort microwave properties of simulated melting precipitation particles: sensitivity to initial melting
publisher Copernicus Publications
series Atmospheric Measurement Techniques
issn 1867-1381
1867-8548
publishDate 2016-01-01
description A simplified approach is presented for assessing the microwave response to the initial melting of realistically shaped ice particles. This paper is divided into two parts: (1) a description of the Single Particle Melting Model (SPMM), a heuristic melting simulation for ice-phase precipitation particles of any shape or size (SPMM is applied to two simulated aggregate snow particles, simulating melting up to 0.15 melt fraction by mass), and (2) the computation of the single-particle microwave scattering and extinction properties of these hydrometeors, using the discrete dipole approximation (via DDSCAT), at the following selected frequencies: 13.4, 35.6, and 94.0 GHz for radar applications and 89, 165.0, and 183.31 GHz for radiometer applications. These selected frequencies are consistent with current microwave remote-sensing platforms, such as CloudSat and the Global Precipitation Measurement (GPM) mission. Comparisons with calculations using variable-density spheres indicate significant deviations in scattering and extinction properties throughout the initial range of melting (liquid volume fractions less than 0.15). Integration of the single-particle properties over an exponential particle size distribution provides additional insight into idealized radar reflectivity and passive microwave brightness temperature sensitivity to variations in size/mass, shape, melt fraction, and particle orientation.
url http://www.atmos-meas-tech.net/9/9/2016/amt-9-9-2016.pdf
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