A peridynamic material model for the analysis of dynamic crack propagation in orthotropic media
File(s)manuscript-2-forGreenOA.pdf (1.53 MB)
Accepted version
Author(s)
Ghajari, M
Iannucci, L
Curtis, P
Type
Journal Article
Abstract
A new material model for the dynamic fracture analysis of anisotropic materials has been proposed within the framework of the bond-based peridynamic theory. This model enables predicting complex fracture phenomena such as spontaneous crack nucleation and crack branching, curving and arrest, a capability inherited from the bond-based peridynamic theory. An important feature of the model is that the bond properties, i.e. the stiffness constant and critical stretch, are continuous functions of bond orientation in the principal material axes. This facilitates fracture analysis of anisotropic materials with random orientations, such as polycrystalline microstructures. Elastic and fracture behaviour of the model has been verified through simulating uniaxial tension of a composite plate and fracture of a cortical bone compact tension specimen, and making quantitative comparisons to analytical and experimental data. To further demonstrate the capabilities of the proposed model, dynamic fracture of a polycrystalline microstructure (alumina ceramic) has been simulated. The influence of the grain boundary and grain interior fracture energies on the interacting and competing fracture modes of polycrystalline materials, i.e. intergranular and transgranular fracture, has been studied.
Date Issued
2014-07-01
Date Acceptance
2014-04-03
Citation
Computer Methods in Applied Mechanics and Engineering, 2014, 276 (1), pp.431-452
ISSN
0045-7825
Publisher
Elsevier
Start Page
431
End Page
452
Journal / Book Title
Computer Methods in Applied Mechanics and Engineering
Volume
276
Issue
1
Copyright Statement
© 2014 Elsevier B.V. All rights reserved. NOTICE: this is the author’s version of a work that was accepted for publication in Computer Methods in Applied Mechanics and Engineering. Changes resulting from the publishing process, such as peer review, editing, corrections, structural formatting, and other quality control mechanisms may not be reflected in this document. Changes may have been made to this work since it was submitted for publication. A definitive version was subsequently published in COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, Vol.: 276, (2014) DOI: 10.1016/j.cma.2014.04.002
Sponsor
Engineering & Physical Science Research Council (EPSRC)
Identifier
http://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=WOS:000337985100018&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=1ba7043ffcc86c417c072aa74d649202
Grant Number
EP/G042861/1
Subjects
Science & Technology
Technology
Physical Sciences
Engineering, Multidisciplinary
Mathematics, Interdisciplinary Applications
Mechanics
Engineering
Mathematics
Peridynamics
Anisotropy
Fracture
Bone
Ceramic
POLYCRYSTALLINE BRITTLE MATERIALS
GRAIN LEVEL MODEL
FRACTURE-MECHANICS
FAILURE INITIATION
EVOLUTION
Publication Status
Published
Date Publish Online
2014-04-13