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Non-linear fracture in bi-directional graded shafts in torsion

Victor Rizov (Department of Technical Mechanics, University of Architecture and Civil Engineering, Sofia, Bulgaria)

Multidiscipline Modeling in Materials and Structures

ISSN: 1573-6105

Article publication date: 16 October 2018

Issue publication date: 7 January 2019

47

Abstract

Purpose

The purpose of this paper is to develop an analysis of longitudinal fracture behaviour of a functionally graded non-linear-elastic circular shaft loaded in torsion. It is assumed that the material is functionally graded in both radial and longitudinal directions of the shaft (i.e. the material is bi-directional functionally graded).

Design/methodology/approach

The Ramberg–Osgood stress-strain relation is used to describe the non-linear mechanical behaviour of the functionally graded material. The fracture is studied in terms of the strain energy release rate by analysing the balance of the energy. The strain energy release rate is obtained also by differentiating of the complementary strain energy with respect to the crack area for verification.

Findings

Parametric studies are carried out in order to evaluate the influence of material gradients in radial and longitudinal directions, the crack location in radial direction and the crack length on the fracture behaviour of the shaft. It is found that by using appropriate gradients in radial and longitudinal directions, one can tailor the variations of material properties in order to improve the fracture performance of the non-linear-elastic circular shafts to the externally applied torsion moments.

Originality/value

A longitudinal cylindrical crack in a bi-directional functionally graded non-linear-elastic circular shaft loaded in torsion is analysed by using the Ramberg–Osgood stress-strain relation.

Keywords

Citation

Rizov, V. (2019), "Non-linear fracture in bi-directional graded shafts in torsion", Multidiscipline Modeling in Materials and Structures, Vol. 15 No. 1, pp. 156-169. https://doi.org/10.1108/MMMS-12-2017-0163

Publisher

:

Emerald Publishing Limited

Copyright © 2019, Emerald Publishing Limited

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