Title of article :
Microstructure-based multistage fatigue modeling of aluminum alloy 7075-T651
Author/Authors :
Xue، نويسنده , , Y. and McDowell، نويسنده , , D.L. and Horstemeyer، نويسنده , , M.F. and Dale، نويسنده , , M.H. and Jordon، نويسنده , , J.B.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2007
Pages :
14
From page :
2810
To page :
2823
Abstract :
The multistage fatigue model for high cycle fatigue of a cast aluminum alloy developed by McDowell et al. is modified to consider the structure–property relations for cyclic damage and fatigue life of a high strength aluminum alloy 7075-T651 for aircraft structural applications. The multistage model was developed as a physically-based framework to evaluate sensitivity of fatigue response to various microstructural features to support materials process design and component-specific tailoring of fatigue resistant materials. In this work, the model is first generalized to evaluate both the high cycle fatigue (HCF) and low cycle fatigue (LCF) regimes for multiaxial loading conditions, with appropriate modifications introduced for wrought materials. The particular microstructural features of relevance to fatigue in aluminum alloy 7075-T651 include micron-scale Fe-rich intermetallic particles and rolling textures. The model specifically addresses the role of local constrained cyclic microplasticity at fractured inclusions in fatigue crack incubation and microstructurally small crack growth, including the effect of crystallographic orientation on crack tip displacement as the driving force. The model is able to predict lower and upper bounds of the fatigue life based on measured inclusion sizes.
Keywords :
multiaxial loading , Fatigue , Multistage fatigue modeling , Micromechanical simulation , microstructure , 7075-T651 Aluminum alloy
Journal title :
ENGINEERING FRACTURE MECHANICS
Serial Year :
2007
Journal title :
ENGINEERING FRACTURE MECHANICS
Record number :
2341955
Link To Document :
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