Optimization of Thick-Walled Viscoelastic Hollow Polymer Cylinders by Artificial Heterogeneity Creation: Theoretical Aspects

A theoretical solution of the problem of thick-walled shell optimization by varying the mechanical characteristics of the material over the thickness of the structure is proposed, taking into account its rheological properties. The optimization technique is considered by the example of a cylindrical...

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Main Authors: Anton Chepurnenko, Stepan Litvinov, Besarion Meskhi, Alexey Beskopylny
Format: Article
Language:English
Published: MDPI AG 2021-07-01
Series:Polymers
Subjects:
Online Access:https://www.mdpi.com/2073-4360/13/15/2408
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spelling doaj-aa3de19352a3425494c97ece4d14c27b2021-08-06T15:29:41ZengMDPI AGPolymers2073-43602021-07-01132408240810.3390/polym13152408Optimization of Thick-Walled Viscoelastic Hollow Polymer Cylinders by Artificial Heterogeneity Creation: Theoretical AspectsAnton Chepurnenko0Stepan Litvinov1Besarion Meskhi2Alexey Beskopylny3Strength of Materials Department, Faculty of Civil and Industrial Engineering, Don State Technical University, Rostov-on-Don 344000, RussiaStrength of Materials Department, Faculty of Civil and Industrial Engineering, Don State Technical University, Rostov-on-Don 344000, RussiaDepartment of Life Safety and Environmental Protection, Faculty of Life Safety and Environmental Engineering, Don State Technical University, Rostov-on-Don 344000, RussiaDepartment of Transport Systems, Faculty of Roads and Transport Systems, Don State Technical University, Rostov-on-Don 344000, RussiaA theoretical solution of the problem of thick-walled shell optimization by varying the mechanical characteristics of the material over the thickness of the structure is proposed, taking into account its rheological properties. The optimization technique is considered by the example of a cylindrical shell made of high-density polyethylene with hydroxyapatite subjected to internal pressure. Radial heterogeneity can be created by centrifugation during the curing of the polymer mixed with the additive. The nonlinear Maxwell–Gurevich equation is used as the law describing polymer creep. The relationship of the change in the additive content along with the radius r, at which the structure is equally stressed following the four classical criteria of fracture, is determined in an elastic formulation. Moreover, it is shown that a cylinder with equal stress at the beginning of the creep process ceases to be equally stressed during creep. Finally, an algorithm for defining the relationship of the additive mass content on coordinate r, at which the structure is equally stressed at the end of the creep process, is proposed. The developed algorithm, implemented in the MATLAB software, allows modeling both equally stressed and equally strength structures.https://www.mdpi.com/2073-4360/13/15/2408polymersheterogeneitycreepstress–strain stateequal-strength structuresequally stressed structures
collection DOAJ
language English
format Article
sources DOAJ
author Anton Chepurnenko
Stepan Litvinov
Besarion Meskhi
Alexey Beskopylny
spellingShingle Anton Chepurnenko
Stepan Litvinov
Besarion Meskhi
Alexey Beskopylny
Optimization of Thick-Walled Viscoelastic Hollow Polymer Cylinders by Artificial Heterogeneity Creation: Theoretical Aspects
Polymers
polymers
heterogeneity
creep
stress–strain state
equal-strength structures
equally stressed structures
author_facet Anton Chepurnenko
Stepan Litvinov
Besarion Meskhi
Alexey Beskopylny
author_sort Anton Chepurnenko
title Optimization of Thick-Walled Viscoelastic Hollow Polymer Cylinders by Artificial Heterogeneity Creation: Theoretical Aspects
title_short Optimization of Thick-Walled Viscoelastic Hollow Polymer Cylinders by Artificial Heterogeneity Creation: Theoretical Aspects
title_full Optimization of Thick-Walled Viscoelastic Hollow Polymer Cylinders by Artificial Heterogeneity Creation: Theoretical Aspects
title_fullStr Optimization of Thick-Walled Viscoelastic Hollow Polymer Cylinders by Artificial Heterogeneity Creation: Theoretical Aspects
title_full_unstemmed Optimization of Thick-Walled Viscoelastic Hollow Polymer Cylinders by Artificial Heterogeneity Creation: Theoretical Aspects
title_sort optimization of thick-walled viscoelastic hollow polymer cylinders by artificial heterogeneity creation: theoretical aspects
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2021-07-01
description A theoretical solution of the problem of thick-walled shell optimization by varying the mechanical characteristics of the material over the thickness of the structure is proposed, taking into account its rheological properties. The optimization technique is considered by the example of a cylindrical shell made of high-density polyethylene with hydroxyapatite subjected to internal pressure. Radial heterogeneity can be created by centrifugation during the curing of the polymer mixed with the additive. The nonlinear Maxwell–Gurevich equation is used as the law describing polymer creep. The relationship of the change in the additive content along with the radius r, at which the structure is equally stressed following the four classical criteria of fracture, is determined in an elastic formulation. Moreover, it is shown that a cylinder with equal stress at the beginning of the creep process ceases to be equally stressed during creep. Finally, an algorithm for defining the relationship of the additive mass content on coordinate r, at which the structure is equally stressed at the end of the creep process, is proposed. The developed algorithm, implemented in the MATLAB software, allows modeling both equally stressed and equally strength structures.
topic polymers
heterogeneity
creep
stress–strain state
equal-strength structures
equally stressed structures
url https://www.mdpi.com/2073-4360/13/15/2408
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AT besarionmeskhi optimizationofthickwalledviscoelastichollowpolymercylindersbyartificialheterogeneitycreationtheoreticalaspects
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