Estimation of bottom backscattering strength from measured and modeled AN/SQS-53C reverberation levels

Hamilton type geoacoustic models were developed for Area Foxtrot, a NUWC test bed for emerging active sonar systems where the surface sediment type is highly spatially variable. Reverberation levels (RL) were modeled using the FEPE propagation model to augment the GSM propagation model because the b...

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Main Author: Scanlon, Gary Alexander.
Other Authors: Wilson, James H.
Language:en_US
Published: Monterey, California. Naval Postgraduate School 2012
Online Access:http://hdl.handle.net/10945/7521
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spelling ndltd-nps.edu-oai-calhoun.nps.edu-10945-75212014-11-27T16:07:02Z Estimation of bottom backscattering strength from measured and modeled AN/SQS-53C reverberation levels Scanlon, Gary Alexander. Wilson, James H. Bourke, Robert H. Meteorology and Physical Oceanography Hamilton type geoacoustic models were developed for Area Foxtrot, a NUWC test bed for emerging active sonar systems where the surface sediment type is highly spatially variable. Reverberation levels (RL) were modeled using the FEPE propagation model to augment the GSM propagation model because the bottom loss model in GSM did not estimate transmission loss accurately in shallow water. FEPE estimates reveal there is over a 15 dB difference between TL for sand and silt-clay sediments in Area Foxtrot. The comparison between modeled RL and measured RL (from a 1991 ASW exercise conducted by MUWC) enabled bottom scattering strength kernels to be developed for Area Foxtrot Bottom scattering strength was found to be a function of sediment type. Hard sand sediment has a bottom scattering strength which obeys Lambert's law (sin2 (theta)) while that of silt clay sediment is consistent with volume scattering (sin (theta)). The RLs in Area Foxtrot are azimuth-dependent and are a function of TL and bottom scattering strength (and hence bottom sediment type). Sonar beams steered towards the hard sand show higher. 2012-07-31T19:53:50Z 2012-07-31T19:53:50Z 1995 Thesis http://hdl.handle.net/10945/7521 en_US This publication is a work of the U.S. Government as defined in Title 17, United States Code, Section 101. As such, it is in the public domain, and under the provisions of Title 17, United States Code, Section 105, it may not be copyrighted. Monterey, California. Naval Postgraduate School
collection NDLTD
language en_US
sources NDLTD
description Hamilton type geoacoustic models were developed for Area Foxtrot, a NUWC test bed for emerging active sonar systems where the surface sediment type is highly spatially variable. Reverberation levels (RL) were modeled using the FEPE propagation model to augment the GSM propagation model because the bottom loss model in GSM did not estimate transmission loss accurately in shallow water. FEPE estimates reveal there is over a 15 dB difference between TL for sand and silt-clay sediments in Area Foxtrot. The comparison between modeled RL and measured RL (from a 1991 ASW exercise conducted by MUWC) enabled bottom scattering strength kernels to be developed for Area Foxtrot Bottom scattering strength was found to be a function of sediment type. Hard sand sediment has a bottom scattering strength which obeys Lambert's law (sin2 (theta)) while that of silt clay sediment is consistent with volume scattering (sin (theta)). The RLs in Area Foxtrot are azimuth-dependent and are a function of TL and bottom scattering strength (and hence bottom sediment type). Sonar beams steered towards the hard sand show higher.
author2 Wilson, James H.
author_facet Wilson, James H.
Scanlon, Gary Alexander.
author Scanlon, Gary Alexander.
spellingShingle Scanlon, Gary Alexander.
Estimation of bottom backscattering strength from measured and modeled AN/SQS-53C reverberation levels
author_sort Scanlon, Gary Alexander.
title Estimation of bottom backscattering strength from measured and modeled AN/SQS-53C reverberation levels
title_short Estimation of bottom backscattering strength from measured and modeled AN/SQS-53C reverberation levels
title_full Estimation of bottom backscattering strength from measured and modeled AN/SQS-53C reverberation levels
title_fullStr Estimation of bottom backscattering strength from measured and modeled AN/SQS-53C reverberation levels
title_full_unstemmed Estimation of bottom backscattering strength from measured and modeled AN/SQS-53C reverberation levels
title_sort estimation of bottom backscattering strength from measured and modeled an/sqs-53c reverberation levels
publisher Monterey, California. Naval Postgraduate School
publishDate 2012
url http://hdl.handle.net/10945/7521
work_keys_str_mv AT scanlongaryalexander estimationofbottombackscatteringstrengthfrommeasuredandmodeledansqs53creverberationlevels
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