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Design Optimization and Non-Linear Buckling Analysis of Spherical Composite Submersible Pressure Hull

This paper describes an optimization study of a spherical composite submersible pressure hull employing a genetic algorithm (GA) in ANSYS. A total of five lay-up arrangements were optimized for three unidirectional composites carbon/epoxy, glass/epoxy, and boron/epoxy. The minimization of the buoyan...

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Autores principales: Imran, Muhammad, Shi, Dongyan, Tong, Lili, Waqas, Hafiz Muhammad, Muhammad, Riaz, Uddin, Muqeem, Khan, Asghar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321073/
https://www.ncbi.nlm.nih.gov/pubmed/32466604
http://dx.doi.org/10.3390/ma13112439
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author Imran, Muhammad
Shi, Dongyan
Tong, Lili
Waqas, Hafiz Muhammad
Muhammad, Riaz
Uddin, Muqeem
Khan, Asghar
author_facet Imran, Muhammad
Shi, Dongyan
Tong, Lili
Waqas, Hafiz Muhammad
Muhammad, Riaz
Uddin, Muqeem
Khan, Asghar
author_sort Imran, Muhammad
collection PubMed
description This paper describes an optimization study of a spherical composite submersible pressure hull employing a genetic algorithm (GA) in ANSYS. A total of five lay-up arrangements were optimized for three unidirectional composites carbon/epoxy, glass/epoxy, and boron/epoxy. The minimization of the buoyancy factor [Formula: see text] was selected as the design optimization objective. The Tsai-Wu and Tsai-Hill failure criteria and buckling strength factor [Formula: see text] were used as the material failure and instability constraints. To determine the effect of geometric non-linearity and imperfections on the optimized design, a non-linear buckling analysis was also carried out for one selected optimized design in ABAQUS. The non-linear buckling analysis was carried out using the modified RIKS procedure, in which the imperfection size changed from 1 to 10 mm. A maximum decrease of 65.937% in buoyancy factor [Formula: see text] over an equivalent spherical steel pressure hull was computed for carbon/epoxy. Moreover, carbon/epoxy displayed larger decreases in buoyancy factor [Formula: see text] in the case of 4 out of a total of 5 lay-up arrangements. The collapse depth decreased from 517.95 m to 412.596 m for a 5 mm lowest mode imperfection. Similarly, the collapse depth decreased from 522.39 m to 315.6018 for a 5 mm worst mode imperfection.
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spelling pubmed-73210732020-07-06 Design Optimization and Non-Linear Buckling Analysis of Spherical Composite Submersible Pressure Hull Imran, Muhammad Shi, Dongyan Tong, Lili Waqas, Hafiz Muhammad Muhammad, Riaz Uddin, Muqeem Khan, Asghar Materials (Basel) Article This paper describes an optimization study of a spherical composite submersible pressure hull employing a genetic algorithm (GA) in ANSYS. A total of five lay-up arrangements were optimized for three unidirectional composites carbon/epoxy, glass/epoxy, and boron/epoxy. The minimization of the buoyancy factor [Formula: see text] was selected as the design optimization objective. The Tsai-Wu and Tsai-Hill failure criteria and buckling strength factor [Formula: see text] were used as the material failure and instability constraints. To determine the effect of geometric non-linearity and imperfections on the optimized design, a non-linear buckling analysis was also carried out for one selected optimized design in ABAQUS. The non-linear buckling analysis was carried out using the modified RIKS procedure, in which the imperfection size changed from 1 to 10 mm. A maximum decrease of 65.937% in buoyancy factor [Formula: see text] over an equivalent spherical steel pressure hull was computed for carbon/epoxy. Moreover, carbon/epoxy displayed larger decreases in buoyancy factor [Formula: see text] in the case of 4 out of a total of 5 lay-up arrangements. The collapse depth decreased from 517.95 m to 412.596 m for a 5 mm lowest mode imperfection. Similarly, the collapse depth decreased from 522.39 m to 315.6018 for a 5 mm worst mode imperfection. MDPI 2020-05-26 /pmc/articles/PMC7321073/ /pubmed/32466604 http://dx.doi.org/10.3390/ma13112439 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Imran, Muhammad
Shi, Dongyan
Tong, Lili
Waqas, Hafiz Muhammad
Muhammad, Riaz
Uddin, Muqeem
Khan, Asghar
Design Optimization and Non-Linear Buckling Analysis of Spherical Composite Submersible Pressure Hull
title Design Optimization and Non-Linear Buckling Analysis of Spherical Composite Submersible Pressure Hull
title_full Design Optimization and Non-Linear Buckling Analysis of Spherical Composite Submersible Pressure Hull
title_fullStr Design Optimization and Non-Linear Buckling Analysis of Spherical Composite Submersible Pressure Hull
title_full_unstemmed Design Optimization and Non-Linear Buckling Analysis of Spherical Composite Submersible Pressure Hull
title_short Design Optimization and Non-Linear Buckling Analysis of Spherical Composite Submersible Pressure Hull
title_sort design optimization and non-linear buckling analysis of spherical composite submersible pressure hull
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321073/
https://www.ncbi.nlm.nih.gov/pubmed/32466604
http://dx.doi.org/10.3390/ma13112439
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