3-D acoustic scattering from 2-D rough surfaces using a parabolic equation model

Approved for public release; distribution is unlimited. === Rough surface scattering plays a crucial role in the statistics of acoustic propagation signals, especially at mid-frequencies and higher (e.g., acoustic communications systems). For many years, the effects of rough surface scattering were...

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Main Author: Helmy, Ahmed M.
Other Authors: Smith, Kevin B.
Published: Monterey, California: Naval Postgraduate School 2014
Online Access:http://hdl.handle.net/10945/38943
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spelling ndltd-nps.edu-oai-calhoun.nps.edu-10945-389432014-11-27T16:19:21Z 3-D acoustic scattering from 2-D rough surfaces using a parabolic equation model Helmy, Ahmed M. Smith, Kevin B. Kapolka, Daphne Engineering Acoustics Academic Committee Approved for public release; distribution is unlimited. Rough surface scattering plays a crucial role in the statistics of acoustic propagation signals, especially at mid-frequencies and higher (e.g., acoustic communications systems). For many years, the effects of rough surface scattering were computed using simple models that were applied in two dimensions (2-D) only. A prescribed method of computing 2-D rough surface scattering directly in a parabolic equation model based on the Split-Step Fourier algorithm was introduced by Tappert and Nghiem-Phu in the mid-1980s. This method has been successfully implemented in various 2-D parabolic equation models, including the Monterey Miami Parabolic Equation model. However, some scientific research of more formal scattering predictions have suggested that out-of-plane, three dimensional (3-D) scattering may lead to significant disparities in the scattered field statistics. Introducing a hybrid implementation for the scattering effect in the field transformation equations using a tri-diagonal solution with the Pad approximant to obtain a system of equations for azimuthal corrections will support predictions of the effect of surface scattering on 3-D propagation, which is critical in evaluating the variability in underwater acoustic propagation. Results of the 3-D scattering calculations obtained are compared with the output of basic 2-D interface perturbations utilizing the standard 2-D approach. 2014-02-18T23:38:58Z 2014-02-18T23:38:58Z 2013-12 Thesis http://hdl.handle.net/10945/38943 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
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sources NDLTD
description Approved for public release; distribution is unlimited. === Rough surface scattering plays a crucial role in the statistics of acoustic propagation signals, especially at mid-frequencies and higher (e.g., acoustic communications systems). For many years, the effects of rough surface scattering were computed using simple models that were applied in two dimensions (2-D) only. A prescribed method of computing 2-D rough surface scattering directly in a parabolic equation model based on the Split-Step Fourier algorithm was introduced by Tappert and Nghiem-Phu in the mid-1980s. This method has been successfully implemented in various 2-D parabolic equation models, including the Monterey Miami Parabolic Equation model. However, some scientific research of more formal scattering predictions have suggested that out-of-plane, three dimensional (3-D) scattering may lead to significant disparities in the scattered field statistics. Introducing a hybrid implementation for the scattering effect in the field transformation equations using a tri-diagonal solution with the Pad approximant to obtain a system of equations for azimuthal corrections will support predictions of the effect of surface scattering on 3-D propagation, which is critical in evaluating the variability in underwater acoustic propagation. Results of the 3-D scattering calculations obtained are compared with the output of basic 2-D interface perturbations utilizing the standard 2-D approach.
author2 Smith, Kevin B.
author_facet Smith, Kevin B.
Helmy, Ahmed M.
author Helmy, Ahmed M.
spellingShingle Helmy, Ahmed M.
3-D acoustic scattering from 2-D rough surfaces using a parabolic equation model
author_sort Helmy, Ahmed M.
title 3-D acoustic scattering from 2-D rough surfaces using a parabolic equation model
title_short 3-D acoustic scattering from 2-D rough surfaces using a parabolic equation model
title_full 3-D acoustic scattering from 2-D rough surfaces using a parabolic equation model
title_fullStr 3-D acoustic scattering from 2-D rough surfaces using a parabolic equation model
title_full_unstemmed 3-D acoustic scattering from 2-D rough surfaces using a parabolic equation model
title_sort 3-d acoustic scattering from 2-d rough surfaces using a parabolic equation model
publisher Monterey, California: Naval Postgraduate School
publishDate 2014
url http://hdl.handle.net/10945/38943
work_keys_str_mv AT helmyahmedm 3dacousticscatteringfrom2droughsurfacesusingaparabolicequationmodel
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