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  5. Mode-mixity in Beam-like Geometries: Linear Elastic Cases and Local Partitioning
 
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Mode-mixity in Beam-like Geometries: Linear Elastic Cases and Local Partitioning

Author(s)
Blackman, B. R. K.  
Conroy, Mark  
Ivankovic, Alojz  
et al.  
Uri
http://hdl.handle.net/10197/4773
Date Issued
2012
Date Available
2013-10-17T07:36:26Z
Abstract
This work is conducted as a part of a wider international activity on mixed mode fractures in beam-like geometries under the coordination of European Structural Integrity Society, Technical Committee 4. In its initial phase, it considers asymmetric double cantilever beam geometry made of a linear elastic material with varying lower arm thickness and constant bending moment applied to the upper arm of the beam. A number of relevant analytical solutions are reviewed including classical Hutchinson and Suo local and Williams global partitioning solutions. Some more recent attempts by Williams, and Wang and Harvey to reproduce local partitioning results by averaging global solutions are also presented. Numerical simulations are conducted using Abaqus package. Mode-mixity is calculated by employing virtual crack closure technique and interaction domain integral. Both approaches gave similar results and close to the Hutchinson and Suo. This is expected as in this initial phase numerical results are based on local partitioning in an elastic material which does not allow for any damage development in front of the crack tip.
Type of Material
Conference Publication
Copyright (Published Version)
2012 the authors
Subjects

Mode-Mixity

Linear elastic cases

Local partitioning

Mixed-mode fracture

Analytical solution

Numerical simulation

ESIS TC4

Language
English
Status of Item
Peer reviewed
Conference Details
15TH EUROPEAN CONFERENCE ON COMPOSITE MATERIALS, Venice, Italy, 24-28 June 2012
This item is made available under a Creative Commons License
https://creativecommons.org/licenses/by-nc-nd/3.0/ie/
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MarkConroy-ECCMVenice done.pdf

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743.85 KB

Format

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Checksum (MD5)

64e6d110b358ec54e71b8e834c8cbe21

Owning collection
Mechanical & Materials Engineering Research Collection

Item descriptive metadata is released under a CC-0 (public domain) license: https://creativecommons.org/public-domain/cc0/.
All other content is subject to copyright.

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