PSI - Issue 17

J.P. Pascon et al. / Procedia Structural Integrity 17 (2019) 411–418 Author name / Structural Integrity Procedia 00 (2019) 000 – 000

418

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References

Benz, C., Sander, M., 2015. Reconsiderations of fatigue crack growth at negative stress ratios: Finite element analysis. Engineering Fracture Mechanics 145, 98-114. Dinda, S., Kujawski, D., 2004. Correlation and prediction of fatigue crack growth for different R -ratios using Kmax and ΔK+ parameters. Engineering Fracture Mechanics 71, 1779-1790. Espezua, S.V.P., Baptista, C.A.R.P., Silva-Antunes, A.M.B., Pastoukhov, V., Torres, M.A.S., 2014. Study of fatigue crack growth in Al-Mg-Si alloys using a predictive model under positive and negative load ratios. Advanced Materials Research 891-2, 1785-1790. Laurito-Nascimento, D.F., Silva, A.M.B., Espezua, S.V.P., Baptista, C.A.R.P., 2013. Low cycle fatigue behaviour of Al-Mg-Si alloys, European Congress and Exhibition on Advanced Materials and Processes – EUROMAT 2013, Sevilla, Spain, 8-13 September: Book of Abstracts, 1p. Mehrzadi, M., Taheri, F., 2012. The influence of negative and positive stress ratios on crack growth rate in AM60B magnesium alloy. Materials Science and Engineering A 545, 68-77. Pascon, J.P., Coda, H.B., 2012. Analysis of elastic functionally graded materials under large displacements via high-order tetrahedral elements. Finite Elements in Analysis and Design 50, 33-47. Silva, F.S., 2004. Crack closure inadequacy at negative stress ratio. International Journal of Fatigue 26, 241-252. Torres, M.A.S., Silva, B.R.L., Costa, D.H.S., Baptista, C.A.R.P., Pastoukhov, V., 2017. Fatigue crack growth in an Al-Mg-Si alloy under negative load ratio. Key Engineering Materials 754, 43-46.

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