Incoherent short pulse scattering from penetrable geophysical media

A new model for incoherent short pulse scattering from penetrable geophysical media is developed. The model is obtained by assuming that the surface and volume scattered components of the total scattered waveform only minimally interact. A well-known form is used for the surface scattered component...

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Bibliographic Details
Main Author: Adams, Robert John
Other Authors: Electrical Engineering, Brown, Gary S., Bostian, Charles W., Stutzman, Warren L.
Format: Thesis
Language:English
Published: Virginia Tech 1995
Subjects:
Online Access:http://hdl.handle.net/10919/43517
http://scholar.lib.vt.edu/theses/available/etd-06302009-040535/
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spelling ftvirginiatec:oai:vtechworks.lib.vt.edu:10919/43517 2024-05-19T07:41:27+00:00 Incoherent short pulse scattering from penetrable geophysical media Adams, Robert John Electrical Engineering Brown, Gary S. Bostian, Charles W. Stutzman, Warren L. 1995-04-11 xi, 126 leaves BTD application/pdf http://hdl.handle.net/10919/43517 http://scholar.lib.vt.edu/theses/available/etd-06302009-040535/ en eng Virginia Tech OCLC# 34123373 LD5655.V855_1995.A336.pdf etd-06302009-040535 http://hdl.handle.net/10919/43517 http://scholar.lib.vt.edu/theses/available/etd-06302009-040535/ In Copyright http://rightsstatements.org/vocab/InC/1.0/ scattered waveform model LD5655.V855 1995.A336 Thesis Text 1995 ftvirginiatec 2024-05-01T00:38:01Z A new model for incoherent short pulse scattering from penetrable geophysical media is developed. The model is obtained by assuming that the surface and volume scattered components of the total scattered waveform only minimally interact. A well-known form is used for the surface scattered component of the backscattered waveform while a new form is derived for the volume scattered component of the total scattered waveform. The new volume scattered waveform model is derived from the scalar equation of transfer. This development illustrates the inherent assumptions of the new model as well as previous models. This leads to a reconciliation of parameter estimates obtained using short pulse scattering models and those obtained using other techniques. In addition, the new model represents a generalization of previous volume scattered waveform models in that it incorporates the effects on the average scattered waveform due to surface roughness and layering in the electromagnetic properties of the scattering medium. Previous models are shown to be slightly incorrect special cases of the new model. Finally, the volume scattered waveform model developed herein is demonstrated to be numerically efficient in general, providing a time savings factor of up to 500 relative to a previous model. The scattered waveform model is subsequently used to analyze scattering data obtained over the Greenland ice sheet by the University of Massachusetts at Amherst's 13.5 GHz Advanced Aircraft Flight Experiment (AAFE) altimeter and NASA's 36 GHz Multimode Aircraft Radar Altimeter (MARA). These altimeters operated simultaneously from the same P-3 aircraft platform in September of 1991 and thus provide a dual frequency look at the scattering properties of the ice sheet. In addition, the large section of the ice sheet from which the scattering data is obtained provides an opportunity to evaluate the radar altimeter's ability to distinguish between the various regions of the ice sheet. The results of this analysis suggest that the altimeter ... Thesis Greenland Ice Sheet VTechWorks (VirginiaTech)
institution Open Polar
collection VTechWorks (VirginiaTech)
op_collection_id ftvirginiatec
language English
topic scattered waveform model
LD5655.V855 1995.A336
spellingShingle scattered waveform model
LD5655.V855 1995.A336
Adams, Robert John
Incoherent short pulse scattering from penetrable geophysical media
topic_facet scattered waveform model
LD5655.V855 1995.A336
description A new model for incoherent short pulse scattering from penetrable geophysical media is developed. The model is obtained by assuming that the surface and volume scattered components of the total scattered waveform only minimally interact. A well-known form is used for the surface scattered component of the backscattered waveform while a new form is derived for the volume scattered component of the total scattered waveform. The new volume scattered waveform model is derived from the scalar equation of transfer. This development illustrates the inherent assumptions of the new model as well as previous models. This leads to a reconciliation of parameter estimates obtained using short pulse scattering models and those obtained using other techniques. In addition, the new model represents a generalization of previous volume scattered waveform models in that it incorporates the effects on the average scattered waveform due to surface roughness and layering in the electromagnetic properties of the scattering medium. Previous models are shown to be slightly incorrect special cases of the new model. Finally, the volume scattered waveform model developed herein is demonstrated to be numerically efficient in general, providing a time savings factor of up to 500 relative to a previous model. The scattered waveform model is subsequently used to analyze scattering data obtained over the Greenland ice sheet by the University of Massachusetts at Amherst's 13.5 GHz Advanced Aircraft Flight Experiment (AAFE) altimeter and NASA's 36 GHz Multimode Aircraft Radar Altimeter (MARA). These altimeters operated simultaneously from the same P-3 aircraft platform in September of 1991 and thus provide a dual frequency look at the scattering properties of the ice sheet. In addition, the large section of the ice sheet from which the scattering data is obtained provides an opportunity to evaluate the radar altimeter's ability to distinguish between the various regions of the ice sheet. The results of this analysis suggest that the altimeter ...
author2 Electrical Engineering
Brown, Gary S.
Bostian, Charles W.
Stutzman, Warren L.
format Thesis
author Adams, Robert John
author_facet Adams, Robert John
author_sort Adams, Robert John
title Incoherent short pulse scattering from penetrable geophysical media
title_short Incoherent short pulse scattering from penetrable geophysical media
title_full Incoherent short pulse scattering from penetrable geophysical media
title_fullStr Incoherent short pulse scattering from penetrable geophysical media
title_full_unstemmed Incoherent short pulse scattering from penetrable geophysical media
title_sort incoherent short pulse scattering from penetrable geophysical media
publisher Virginia Tech
publishDate 1995
url http://hdl.handle.net/10919/43517
http://scholar.lib.vt.edu/theses/available/etd-06302009-040535/
genre Greenland
Ice Sheet
genre_facet Greenland
Ice Sheet
op_relation OCLC# 34123373
LD5655.V855_1995.A336.pdf
etd-06302009-040535
http://hdl.handle.net/10919/43517
http://scholar.lib.vt.edu/theses/available/etd-06302009-040535/
op_rights In Copyright
http://rightsstatements.org/vocab/InC/1.0/
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