Analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loads

This paper is focused on delamination fracture analyses of a multilayered functionally graded circular shaft under two loading combinations (centric tension and torsion, and bending and torsion) assuming non-linear elastic mechanical behavior of the material. The loading combinations under consider...

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Main Author: Victor Rizov
Format: Article
Language:English
Published: Gruppo Italiano Frattura 2018-09-01
Series:Frattura ed Integrità Strutturale
Subjects:
Online Access:https://www.fracturae.com/index.php/fis/article/view/2067
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spelling doaj-6ddb54a20b5241f48bb60ab5ba2cff2b2021-01-27T17:14:35ZengGruppo Italiano FratturaFrattura ed Integrità Strutturale1971-89932018-09-011246Analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loadsVictor Rizov0Department of Technical Mechanics University of Architecture, Civil Engineering and Geodesy This paper is focused on delamination fracture analyses of a multilayered functionally graded circular shaft under two loading combinations (centric tension and torsion, and bending and torsion) assuming non-linear elastic mechanical behavior of the material. The loading combinations under consideration generate mixed-mode II/III delamination crack loading conditions (the centric tension and bending generate mode II crack loading, while the torsion is responsible for mode III crack loading). The shaft is made by concentric longitudinal layers. The number of layers is arbitrary. Besides, each layer has individual thickness and material properties. The material in each layer is functionally graded in radial direction. Hyperbolic laws are used to describe the continuous variation of material properties in radial direction. A cylindrical delamination crack (the crack front is a circle) is located arbitrary between layers. The delamination fracture is studied in terms of the strain energy release rate by analyzing the energy balance. In order to verify the solution obtained, the strain energy release rate is derived also by differentiating the complementary strain energy with respect to the delamination crack area. Parametric investigations of the behavior of the cylindrical delamination crack are carried-out. The present paper is a contribution in the fracture mechanics of multilayered functionally graded non-linear elastic circular shafts under combined loads.  https://www.fracturae.com/index.php/fis/article/view/2067Multilayered circular shaftFunctionally graded materialCylindrical delamination crackMaterial non-linearityCombined loads
collection DOAJ
language English
format Article
sources DOAJ
author Victor Rizov
spellingShingle Victor Rizov
Analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loads
Frattura ed Integrità Strutturale
Multilayered circular shaft
Functionally graded material
Cylindrical delamination crack
Material non-linearity
Combined loads
author_facet Victor Rizov
author_sort Victor Rizov
title Analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loads
title_short Analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loads
title_full Analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loads
title_fullStr Analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loads
title_full_unstemmed Analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loads
title_sort analysis of cylindrical delamination cracks in multilayered functionally graded non-linear elastic circular shafts under combined loads
publisher Gruppo Italiano Frattura
series Frattura ed Integrità Strutturale
issn 1971-8993
publishDate 2018-09-01
description This paper is focused on delamination fracture analyses of a multilayered functionally graded circular shaft under two loading combinations (centric tension and torsion, and bending and torsion) assuming non-linear elastic mechanical behavior of the material. The loading combinations under consideration generate mixed-mode II/III delamination crack loading conditions (the centric tension and bending generate mode II crack loading, while the torsion is responsible for mode III crack loading). The shaft is made by concentric longitudinal layers. The number of layers is arbitrary. Besides, each layer has individual thickness and material properties. The material in each layer is functionally graded in radial direction. Hyperbolic laws are used to describe the continuous variation of material properties in radial direction. A cylindrical delamination crack (the crack front is a circle) is located arbitrary between layers. The delamination fracture is studied in terms of the strain energy release rate by analyzing the energy balance. In order to verify the solution obtained, the strain energy release rate is derived also by differentiating the complementary strain energy with respect to the delamination crack area. Parametric investigations of the behavior of the cylindrical delamination crack are carried-out. The present paper is a contribution in the fracture mechanics of multilayered functionally graded non-linear elastic circular shafts under combined loads. 
topic Multilayered circular shaft
Functionally graded material
Cylindrical delamination crack
Material non-linearity
Combined loads
url https://www.fracturae.com/index.php/fis/article/view/2067
work_keys_str_mv AT victorrizov analysisofcylindricaldelaminationcracksinmultilayeredfunctionallygradednonlinearelasticcircularshaftsundercombinedloads
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