Simulation and measurement techniques for microwave remote sensing of sea ice

This dissertation presents new research into the study of simulation and measurement techniques for microwave remote sensing of sea ice. We have embarked on a major study of the microwave propagation and scattering properties of sea ice in an attempt to link the physics of the sea ice medium to expe...

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Main Author: Isleifson, Dustin
Other Authors: Shafai, Lotfollah (Electrical and Computer Engineering) Barber, David (Clayton H Riddell Faculty of Environment, Earth, and Resources), LoVetri, Joe (Electrical and Computer Engineering) Papakyriakou, Tim (Clayton H Riddell Faculty of Environment, Earth, and Resources) Bernier, Monique (Institut national de la recherche scientifique INRS)
Language:unknown
Published: IEEE 2011
Subjects:
Online Access:http://hdl.handle.net/1993/4812
id ftcanadathes:oai:collectionscanada.gc.ca:MWU.1993/4812
record_format openpolar
institution Open Polar
collection Theses Canada/Thèses Canada (Library and Archives Canada)
op_collection_id ftcanadathes
language unknown
topic electromagnetics
radar
sea ice
remote sensing
arctic
FVTD
spellingShingle electromagnetics
radar
sea ice
remote sensing
arctic
FVTD
Isleifson, Dustin
Simulation and measurement techniques for microwave remote sensing of sea ice
topic_facet electromagnetics
radar
sea ice
remote sensing
arctic
FVTD
description This dissertation presents new research into the study of simulation and measurement techniques for microwave remote sensing of sea ice. We have embarked on a major study of the microwave propagation and scattering properties of sea ice in an attempt to link the physics of the sea ice medium to experimentally obtained concomitant scatterometer measurements. During our fieldwork, we studied the polarimetric backscattering response of sea ice, focusing on newly-formed sea ice under a large assortment of surface coverage. Polarimetric backscattering results and physical data for 40 stations during the fall freeze-up of 2003, 2006, and 2007 are presented. Analysis of the co-polarization correlation coefficient showed its sensitivity to sea ice thickness and surface coverage and resulted in a statistically significant separation of ice thickness into two regimes: ice less than 6 cm thick and ice greater than 8 cm thick. A case study quantified the backscatter of snow-infiltrated frost fl owers on new sea ice, showing that the presence of the frost flowers enhanced the backscatter by more than 6 dB. In our simulation work, an efficient method for simulating scattering from objects in multi-layered media was incorporated into a scattered-field formulation of the FVTD method. A total-field 1D-FDTD solution to the plane-wave propagation through multi-layered meda was used as a source. The method was validated for a TE-polarized incident-field through comparisons with other numerical techniques involving examples of scattering from canonically-shaped objects. Methods for homogenization of inhomogeneous media were developed and validated using well-known dielectric mixture models. A Monte Carlo Method for simulating scattering from statistically rough surfaces was developed and was validated through favorable comparison with the SPM method for rough surface scattering. Finally, we presented a new Monte Carlo Method for simulating sea ice remote sensing that utilized the framework of the FVTD method for scattering simulations. The modeling process was driven by actual physical measurements of sea ice, wherein dielectric and physics-based modeling techniques were employed. The method was demonstrated through a series of case studies where the scattering from newly-formed sea ice was simulated using a TE-polarized incident- eld. Good agreement between experimental scatterometer measurements and simulated results was obtained for co-polarized returns, whereas cross-polarized results indicated that more depolarizing features must be taken into account.
author2 Shafai, Lotfollah (Electrical and Computer Engineering) Barber, David (Clayton H Riddell Faculty of Environment, Earth, and Resources)
LoVetri, Joe (Electrical and Computer Engineering) Papakyriakou, Tim (Clayton H Riddell Faculty of Environment, Earth, and Resources) Bernier, Monique (Institut national de la recherche scientifique INRS)
author Isleifson, Dustin
author_facet Isleifson, Dustin
author_sort Isleifson, Dustin
title Simulation and measurement techniques for microwave remote sensing of sea ice
title_short Simulation and measurement techniques for microwave remote sensing of sea ice
title_full Simulation and measurement techniques for microwave remote sensing of sea ice
title_fullStr Simulation and measurement techniques for microwave remote sensing of sea ice
title_full_unstemmed Simulation and measurement techniques for microwave remote sensing of sea ice
title_sort simulation and measurement techniques for microwave remote sensing of sea ice
publisher IEEE
publishDate 2011
url http://hdl.handle.net/1993/4812
geographic Arctic
geographic_facet Arctic
genre Arctic
Sea ice
genre_facet Arctic
Sea ice
op_relation Isleifson, D.; Hwang, B.; Barber, D. G.; Scharien, R. K. & Shafai, L. "C-Band Polarimetric Backscattering Signatures of Newly Formed Sea Ice During Fall Freeze-Up," IEEE Trans. on Geosci. and Remote Sens., 2010, 48, 3256 -3267 .
Isleifson, D. and Shafai, L. “Numerical Homogenization of Heterogeneous Media Using FVTD Simulations,” 14th International Symposium on Antenna Technology and Applied Electromagnetics 2010. ANTEM 2010., July 5-8, 2010.
Isleifson, D., Jeffrey, I., Shafai, L., LoVetri, J., Barber, D. G., “An Efficient Scattered-Field Formulation for Objects in Layered Media using the FVTD Method,” IEEE Transactions on Antennas and Propagation, In Press, Manuscript ID AP1010-1176.
Isleifson, D., Jeffrey, I., Shafai, L., Barber, D. G., “Numerical Scattering from 3D Randomly Rough Surfaces using FVTD,”AP-S/URSI 2011, Accepted, Manuscript ID 1197.
http://hdl.handle.net/1993/4812
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spelling ftcanadathes:oai:collectionscanada.gc.ca:MWU.1993/4812 2023-05-15T15:19:25+02:00 Simulation and measurement techniques for microwave remote sensing of sea ice Isleifson, Dustin Shafai, Lotfollah (Electrical and Computer Engineering) Barber, David (Clayton H Riddell Faculty of Environment, Earth, and Resources) LoVetri, Joe (Electrical and Computer Engineering) Papakyriakou, Tim (Clayton H Riddell Faculty of Environment, Earth, and Resources) Bernier, Monique (Institut national de la recherche scientifique INRS) 2011-09-01T13:09:51Z http://hdl.handle.net/1993/4812 unknown IEEE Isleifson, D.; Hwang, B.; Barber, D. G.; Scharien, R. K. & Shafai, L. "C-Band Polarimetric Backscattering Signatures of Newly Formed Sea Ice During Fall Freeze-Up," IEEE Trans. on Geosci. and Remote Sens., 2010, 48, 3256 -3267 . Isleifson, D. and Shafai, L. “Numerical Homogenization of Heterogeneous Media Using FVTD Simulations,” 14th International Symposium on Antenna Technology and Applied Electromagnetics 2010. ANTEM 2010., July 5-8, 2010. Isleifson, D., Jeffrey, I., Shafai, L., LoVetri, J., Barber, D. G., “An Efficient Scattered-Field Formulation for Objects in Layered Media using the FVTD Method,” IEEE Transactions on Antennas and Propagation, In Press, Manuscript ID AP1010-1176. Isleifson, D., Jeffrey, I., Shafai, L., Barber, D. G., “Numerical Scattering from 3D Randomly Rough Surfaces using FVTD,”AP-S/URSI 2011, Accepted, Manuscript ID 1197. http://hdl.handle.net/1993/4812 electromagnetics radar sea ice remote sensing arctic FVTD 2011 ftcanadathes 2014-03-30T00:51:05Z This dissertation presents new research into the study of simulation and measurement techniques for microwave remote sensing of sea ice. We have embarked on a major study of the microwave propagation and scattering properties of sea ice in an attempt to link the physics of the sea ice medium to experimentally obtained concomitant scatterometer measurements. During our fieldwork, we studied the polarimetric backscattering response of sea ice, focusing on newly-formed sea ice under a large assortment of surface coverage. Polarimetric backscattering results and physical data for 40 stations during the fall freeze-up of 2003, 2006, and 2007 are presented. Analysis of the co-polarization correlation coefficient showed its sensitivity to sea ice thickness and surface coverage and resulted in a statistically significant separation of ice thickness into two regimes: ice less than 6 cm thick and ice greater than 8 cm thick. A case study quantified the backscatter of snow-infiltrated frost fl owers on new sea ice, showing that the presence of the frost flowers enhanced the backscatter by more than 6 dB. In our simulation work, an efficient method for simulating scattering from objects in multi-layered media was incorporated into a scattered-field formulation of the FVTD method. A total-field 1D-FDTD solution to the plane-wave propagation through multi-layered meda was used as a source. The method was validated for a TE-polarized incident-field through comparisons with other numerical techniques involving examples of scattering from canonically-shaped objects. Methods for homogenization of inhomogeneous media were developed and validated using well-known dielectric mixture models. A Monte Carlo Method for simulating scattering from statistically rough surfaces was developed and was validated through favorable comparison with the SPM method for rough surface scattering. Finally, we presented a new Monte Carlo Method for simulating sea ice remote sensing that utilized the framework of the FVTD method for scattering simulations. The modeling process was driven by actual physical measurements of sea ice, wherein dielectric and physics-based modeling techniques were employed. The method was demonstrated through a series of case studies where the scattering from newly-formed sea ice was simulated using a TE-polarized incident- eld. Good agreement between experimental scatterometer measurements and simulated results was obtained for co-polarized returns, whereas cross-polarized results indicated that more depolarizing features must be taken into account. Other/Unknown Material Arctic Sea ice Theses Canada/Thèses Canada (Library and Archives Canada) Arctic