Numerical modelling of roughness and plasticity induced crack closure effects in fatigue

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作者
Parry, M.R. [1 ]
Syngellakis, S. [2 ]
Sinclair, I. [1 ]
机构
[1] Materials Research Group, University of Southampton, School of Engineering Sciences, Highfield, Southampton, SO17 1BJ, United Kingdom
[2] Compl. Engineering and Design Groups, University of Southampton, School of Engineering Sciences, Highfield, Southampton, SO17 1BJ, United Kingdom
关键词
Computer simulation - Cracks - Deformation - Fatigue of materials - Finite element method - Mathematical models - Morphology - Strain - Surfaces;
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摘要
The incidence of roughness induced fatigue crack closure has been studied by finite element modelling. Based on an analysis of both overall specimen compliance and node behaviour along the crack path the present modelling shows: (a) an increasing effect of crack path angle on roughness induced closure levels in keeping with the simple analytical model of Suresh and Ritchie; (b) the mechanism by which closure occurs is due to residual plastic strains in the wake, rather than global shear displacements of the fracture surfaces due to mixed-mode behaviour at the crack tip; and (c) the closure levels are relatively low compared to experimental data, consistent with the absence of environmental irreversibility in the finite element models and the idealised crack path morphologies that were used. Slip band simulations show a significant increasing effect of inhomogeneous deformation on closure levels, improving the apparent accuracy of the modelling results.
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