Satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclones

Satellite radiothermovision is a set of processing techniques applicable for multisource data of radiothermal monitoring of oceanatmosphere system, which allows creating dynamic description of mesoscale and synoptic atmospheric processes and estimating physically meaningful integral characteristics...

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Main Authors: D. M. Ermakov, E. A. Sharkov, A. P. Chernushich
Format: Article
Language:English
Published: Copernicus Publications 2015-04-01
Series:The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
Online Access:http://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XL-7-W3/179/2015/isprsarchives-XL-7-W3-179-2015.pdf
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spelling doaj-19f8195296d540cbb64b0df7901377792020-11-24T20:55:00ZengCopernicus PublicationsThe International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences1682-17502194-90342015-04-01XL-7/W317918610.5194/isprsarchives-XL-7-W3-179-2015Satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclonesD. M. Ermakov0E. A. Sharkov1A. P. Chernushich2Institute of Radioengineering and Electronics of RAS, Fryazino department, Fryazino, Russian FederationSpace Research Institute of RAS, Moscow, Russian FederationInstitute of Radioengineering and Electronics of RAS, Fryazino department, Fryazino, Russian FederationSatellite radiothermovision is a set of processing techniques applicable for multisource data of radiothermal monitoring of oceanatmosphere system, which allows creating dynamic description of mesoscale and synoptic atmospheric processes and estimating physically meaningful integral characteristics of the observed processes (like avdective flow of the latent heat through a given border). The approach is based on spatiotemporal interpolation of the satellite measurements which allows reconstructing the radiothermal fields (as well as the fields of geophysical parameters) of the ocean-atmosphere system at global scale with spatial resolution of about 0.125° and temporal resolution of 1.5 hour. The accuracy of spatiotemporal interpolation was estimated by direct comparison of interpolated data with the data of independent asynchronous measurements and was shown to correspond to the best achievable as reported in literature (for total precipitable water fields the accuracy is about 0.8 mm). <br><br> The advantages of the implemented interpolation scheme are: closure under input radiothermal data, homogeneity in time scale (all data are interpolated through the same time intervals), automatic estimation of both the intermediate states of scalar field of the studied geophysical parameter and of vector field of effective velocity of advection (horizontal movements). Using this pair of fields one can calculate the flow of a given geophysical quantity though any given border. For example, in case of total precipitable water field, this flow (under proper calibration) has the meaning of latent heat advective flux. <br><br> This opportunity was used to evaluate the latent heat flux though a set of circular contours, enclosing a tropical cyclone and drifting with it during its evolution. A remarkable interrelation was observed between the calculated magnitude and sign of advective latent flux and the intensity of a tropical cyclone. This interrelation is demonstrated in several examples of hurricanes and tropical cyclones of August, 2000, and typhoons of November, 2013, including super typhoon Haiyan.http://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XL-7-W3/179/2015/isprsarchives-XL-7-W3-179-2015.pdf
collection DOAJ
language English
format Article
sources DOAJ
author D. M. Ermakov
E. A. Sharkov
A. P. Chernushich
spellingShingle D. M. Ermakov
E. A. Sharkov
A. P. Chernushich
Satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclones
The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
author_facet D. M. Ermakov
E. A. Sharkov
A. P. Chernushich
author_sort D. M. Ermakov
title Satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclones
title_short Satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclones
title_full Satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclones
title_fullStr Satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclones
title_full_unstemmed Satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclones
title_sort satellite radiothermovision of atmospheric mesoscale processes: case study of tropical cyclones
publisher Copernicus Publications
series The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences
issn 1682-1750
2194-9034
publishDate 2015-04-01
description Satellite radiothermovision is a set of processing techniques applicable for multisource data of radiothermal monitoring of oceanatmosphere system, which allows creating dynamic description of mesoscale and synoptic atmospheric processes and estimating physically meaningful integral characteristics of the observed processes (like avdective flow of the latent heat through a given border). The approach is based on spatiotemporal interpolation of the satellite measurements which allows reconstructing the radiothermal fields (as well as the fields of geophysical parameters) of the ocean-atmosphere system at global scale with spatial resolution of about 0.125° and temporal resolution of 1.5 hour. The accuracy of spatiotemporal interpolation was estimated by direct comparison of interpolated data with the data of independent asynchronous measurements and was shown to correspond to the best achievable as reported in literature (for total precipitable water fields the accuracy is about 0.8 mm). <br><br> The advantages of the implemented interpolation scheme are: closure under input radiothermal data, homogeneity in time scale (all data are interpolated through the same time intervals), automatic estimation of both the intermediate states of scalar field of the studied geophysical parameter and of vector field of effective velocity of advection (horizontal movements). Using this pair of fields one can calculate the flow of a given geophysical quantity though any given border. For example, in case of total precipitable water field, this flow (under proper calibration) has the meaning of latent heat advective flux. <br><br> This opportunity was used to evaluate the latent heat flux though a set of circular contours, enclosing a tropical cyclone and drifting with it during its evolution. A remarkable interrelation was observed between the calculated magnitude and sign of advective latent flux and the intensity of a tropical cyclone. This interrelation is demonstrated in several examples of hurricanes and tropical cyclones of August, 2000, and typhoons of November, 2013, including super typhoon Haiyan.
url http://www.int-arch-photogramm-remote-sens-spatial-inf-sci.net/XL-7-W3/179/2015/isprsarchives-XL-7-W3-179-2015.pdf
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