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Influence of Geometric Parameters of Conical Acrylic Portholes on Their Stress–Strain Behaviour

Translucent elements in the form of truncated cones, which are made of organic glass, are widely used in the structures of portholes, submersible vessels, space vehicles, pressure chambers, teleboxes and other types of technical equipment. The decisive factor in designing portholes is to ensure the...

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Autores principales: Kochanov, Vladimir, Píštěk, Václav, Kondratiev, Andrii, Yuresko, Tetyana, Kučera, Pavel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8914805/
https://www.ncbi.nlm.nih.gov/pubmed/35267864
http://dx.doi.org/10.3390/polym14051041
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author Kochanov, Vladimir
Píštěk, Václav
Kondratiev, Andrii
Yuresko, Tetyana
Kučera, Pavel
author_facet Kochanov, Vladimir
Píštěk, Václav
Kondratiev, Andrii
Yuresko, Tetyana
Kučera, Pavel
author_sort Kochanov, Vladimir
collection PubMed
description Translucent elements in the form of truncated cones, which are made of organic glass, are widely used in the structures of portholes, submersible vessels, space vehicles, pressure chambers, teleboxes and other types of technical equipment. The decisive factor in designing portholes is to ensure the strength of their translucent elements. In order to reduce the weight of portholes and, accordingly, to increase the payload, it is necessary to optimise the geometric parameters of the translucent elements, which include the tapering angle and the ratio of thickness to radius of the smaller base. The paper deals with development of the applied (engineering) method for determining the stress–strain behaviour of the conical translucent elements of portholes made of organic glass under the action of a uniform hydrostatic pressure. Finite-element modelling of the translucent element of the conical porthole is performed, with the calculation of its stress–strain behaviour. External hydrostatic pressure of 10 MPa, absence of loads from the inside and continuous sliding of the translucent element with friction along the conical supporting surface of the porthole metal body are the boundary conditions for the computational model. Full-scale tests of translucent elements of portholes made of organic glass were performed under the action of uniform hydrostatic pressure. Analysis of the influence of geometric characteristics of the portholes on stress–strain behaviour showed that the increase in the tapering angle at the constant relative thickness of the translucent element reduced its axial displacement in all cases. Equivalent stresses acquire minimum values when the tapering angle is in the range from 75° to 105° (when the relative thickness increases, the optimal tapering angle becomes smaller). It is shown that the developed method for determination of the stress–strain behaviour of the conical translucent elements of portholes made of organic glass reflects the real picture of deformation and agrees with the results of full-scale tests. Results of the work allow us to choose the rational parameters of the translucent element for increasing the reliability of portholes through the creation of an effective distribution of stresses and strains in the translucent element, and improving its optical characteristics due to a relatively small deflection in operation.
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spelling pubmed-89148052022-03-12 Influence of Geometric Parameters of Conical Acrylic Portholes on Their Stress–Strain Behaviour Kochanov, Vladimir Píštěk, Václav Kondratiev, Andrii Yuresko, Tetyana Kučera, Pavel Polymers (Basel) Article Translucent elements in the form of truncated cones, which are made of organic glass, are widely used in the structures of portholes, submersible vessels, space vehicles, pressure chambers, teleboxes and other types of technical equipment. The decisive factor in designing portholes is to ensure the strength of their translucent elements. In order to reduce the weight of portholes and, accordingly, to increase the payload, it is necessary to optimise the geometric parameters of the translucent elements, which include the tapering angle and the ratio of thickness to radius of the smaller base. The paper deals with development of the applied (engineering) method for determining the stress–strain behaviour of the conical translucent elements of portholes made of organic glass under the action of a uniform hydrostatic pressure. Finite-element modelling of the translucent element of the conical porthole is performed, with the calculation of its stress–strain behaviour. External hydrostatic pressure of 10 MPa, absence of loads from the inside and continuous sliding of the translucent element with friction along the conical supporting surface of the porthole metal body are the boundary conditions for the computational model. Full-scale tests of translucent elements of portholes made of organic glass were performed under the action of uniform hydrostatic pressure. Analysis of the influence of geometric characteristics of the portholes on stress–strain behaviour showed that the increase in the tapering angle at the constant relative thickness of the translucent element reduced its axial displacement in all cases. Equivalent stresses acquire minimum values when the tapering angle is in the range from 75° to 105° (when the relative thickness increases, the optimal tapering angle becomes smaller). It is shown that the developed method for determination of the stress–strain behaviour of the conical translucent elements of portholes made of organic glass reflects the real picture of deformation and agrees with the results of full-scale tests. Results of the work allow us to choose the rational parameters of the translucent element for increasing the reliability of portholes through the creation of an effective distribution of stresses and strains in the translucent element, and improving its optical characteristics due to a relatively small deflection in operation. MDPI 2022-03-05 /pmc/articles/PMC8914805/ /pubmed/35267864 http://dx.doi.org/10.3390/polym14051041 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kochanov, Vladimir
Píštěk, Václav
Kondratiev, Andrii
Yuresko, Tetyana
Kučera, Pavel
Influence of Geometric Parameters of Conical Acrylic Portholes on Their Stress–Strain Behaviour
title Influence of Geometric Parameters of Conical Acrylic Portholes on Their Stress–Strain Behaviour
title_full Influence of Geometric Parameters of Conical Acrylic Portholes on Their Stress–Strain Behaviour
title_fullStr Influence of Geometric Parameters of Conical Acrylic Portholes on Their Stress–Strain Behaviour
title_full_unstemmed Influence of Geometric Parameters of Conical Acrylic Portholes on Their Stress–Strain Behaviour
title_short Influence of Geometric Parameters of Conical Acrylic Portholes on Their Stress–Strain Behaviour
title_sort influence of geometric parameters of conical acrylic portholes on their stress–strain behaviour
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8914805/
https://www.ncbi.nlm.nih.gov/pubmed/35267864
http://dx.doi.org/10.3390/polym14051041
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