Volcanic ash cloud retrieval by ground-based microwave weather radar

The potential of ground-based microwave weather radar systems for volcanic ash cloud detection and quantitative retrieval is evaluated. The relationship between radar reflectivity factor, ash concentration, and fall rate is statistically derived for various eruption regimes and ash sizes by applying...

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Published in:IEEE Transactions on Geoscience and Remote Sensing
Main Authors: Marzano, Frank Silvio, Barbieri, S., Vulpiani, G., Rose, William I.
Format: Text
Language:unknown
Published: Digital Commons @ Michigan Tech 2006
Subjects:
Online Access:https://digitalcommons.mtu.edu/geo-fp/42
https://doi.org/10.1109/TGRS.2006.879116
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spelling ftmichigantuniv:oai:digitalcommons.mtu.edu:geo-fp-1043 2023-05-15T16:51:01+02:00 Volcanic ash cloud retrieval by ground-based microwave weather radar Marzano, Frank Silvio Barbieri, S. Vulpiani, G. Rose, William I. 2006-10-30T08:00:00Z https://digitalcommons.mtu.edu/geo-fp/42 https://doi.org/10.1109/TGRS.2006.879116 unknown Digital Commons @ Michigan Tech https://digitalcommons.mtu.edu/geo-fp/42 http://dx.doi.org/10.1109/TGRS.2006.879116 Department of Geological and Mining Engineering and Sciences Publications Ash retrieval inversion methods microwave radars volcanic eruption clouds Earth Sciences Engineering Geology Mining Engineering Other Engineering text 2006 ftmichigantuniv https://doi.org/10.1109/TGRS.2006.879116 2022-01-23T10:32:02Z The potential of ground-based microwave weather radar systems for volcanic ash cloud detection and quantitative retrieval is evaluated. The relationship between radar reflectivity factor, ash concentration, and fall rate is statistically derived for various eruption regimes and ash sizes by applying a radar-reflectivity microphysical model. To quantitatively evaluate the ash detectability by weather radars, a sensitivity analysis is carried out by simulating synthetic ash clouds and varying ash concentration and size as a function of the range. Radar specifications are taken from typical radar systems at S-, C-, and X-band. A prototype algorithm for volcanic ash radar retrieval (VARR) is discussed. Starting from measured single-polarization reflectivity, the statistical inversion technique to retrieve ash concentration and fall rate is based on two cascade steps, namely: 1) classification of eruption regime and volcanic ash category and 2) estimation of ash concentration and fall rate. Expected accuracy of the VARR algorithm estimates is evaluated using a synthetic data set. An application of the VARR technique is finally shown, taking into consideration the eruption of the Grinodotacutemsvoumltn volcano in Iceland on November 2004. Volume scan data from a Doppler C-band radar, which is located at 260 km from the volcano vent, are processed by means of the VARR algorithm. Examples of the achievable VARR products are presented and discussed. Text Iceland Michigan Technological University: Digital Commons @ Michigan Tech IEEE Transactions on Geoscience and Remote Sensing 44 11 3235 3246
institution Open Polar
collection Michigan Technological University: Digital Commons @ Michigan Tech
op_collection_id ftmichigantuniv
language unknown
topic Ash retrieval
inversion methods
microwave radars
volcanic eruption clouds
Earth Sciences
Engineering
Geology
Mining Engineering
Other Engineering
spellingShingle Ash retrieval
inversion methods
microwave radars
volcanic eruption clouds
Earth Sciences
Engineering
Geology
Mining Engineering
Other Engineering
Marzano, Frank Silvio
Barbieri, S.
Vulpiani, G.
Rose, William I.
Volcanic ash cloud retrieval by ground-based microwave weather radar
topic_facet Ash retrieval
inversion methods
microwave radars
volcanic eruption clouds
Earth Sciences
Engineering
Geology
Mining Engineering
Other Engineering
description The potential of ground-based microwave weather radar systems for volcanic ash cloud detection and quantitative retrieval is evaluated. The relationship between radar reflectivity factor, ash concentration, and fall rate is statistically derived for various eruption regimes and ash sizes by applying a radar-reflectivity microphysical model. To quantitatively evaluate the ash detectability by weather radars, a sensitivity analysis is carried out by simulating synthetic ash clouds and varying ash concentration and size as a function of the range. Radar specifications are taken from typical radar systems at S-, C-, and X-band. A prototype algorithm for volcanic ash radar retrieval (VARR) is discussed. Starting from measured single-polarization reflectivity, the statistical inversion technique to retrieve ash concentration and fall rate is based on two cascade steps, namely: 1) classification of eruption regime and volcanic ash category and 2) estimation of ash concentration and fall rate. Expected accuracy of the VARR algorithm estimates is evaluated using a synthetic data set. An application of the VARR technique is finally shown, taking into consideration the eruption of the Grinodotacutemsvoumltn volcano in Iceland on November 2004. Volume scan data from a Doppler C-band radar, which is located at 260 km from the volcano vent, are processed by means of the VARR algorithm. Examples of the achievable VARR products are presented and discussed.
format Text
author Marzano, Frank Silvio
Barbieri, S.
Vulpiani, G.
Rose, William I.
author_facet Marzano, Frank Silvio
Barbieri, S.
Vulpiani, G.
Rose, William I.
author_sort Marzano, Frank Silvio
title Volcanic ash cloud retrieval by ground-based microwave weather radar
title_short Volcanic ash cloud retrieval by ground-based microwave weather radar
title_full Volcanic ash cloud retrieval by ground-based microwave weather radar
title_fullStr Volcanic ash cloud retrieval by ground-based microwave weather radar
title_full_unstemmed Volcanic ash cloud retrieval by ground-based microwave weather radar
title_sort volcanic ash cloud retrieval by ground-based microwave weather radar
publisher Digital Commons @ Michigan Tech
publishDate 2006
url https://digitalcommons.mtu.edu/geo-fp/42
https://doi.org/10.1109/TGRS.2006.879116
genre Iceland
genre_facet Iceland
op_source Department of Geological and Mining Engineering and Sciences Publications
op_relation https://digitalcommons.mtu.edu/geo-fp/42
http://dx.doi.org/10.1109/TGRS.2006.879116
op_doi https://doi.org/10.1109/TGRS.2006.879116
container_title IEEE Transactions on Geoscience and Remote Sensing
container_volume 44
container_issue 11
container_start_page 3235
op_container_end_page 3246
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