Defect evolution during high temperature tension-tension fatigue of SLM AISi10Mg alloy by synchrotron tomography
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P. Withers | Wei Sun | Ya-nan Fu | J. Bao | Fei Li | Sheng-chuan Wu | Zhengkai Wu
[1] Constance Delamadeleine. Location , 2021, Multiple Voices.
[2] P. Withers,et al. A new approach to correlate the defect population with the fatigue life of selective laser melted Ti-6Al-4V alloy , 2020 .
[3] P. Withers,et al. The effect of manufacturing defects on the fatigue life of selective laser melted Ti-6Al-4V structures , 2020 .
[4] A. D. de Jesus,et al. Low and ultra-low-cycle fatigue behavior of X52 piping steel based on theory of critical distances , 2020, International Journal of Fatigue.
[5] P. Withers,et al. 4D Imaging of Void Nucleation, Growth and Coalescence from Large and Small Inclusions in Steel , 2019, SSRN Electronic Journal.
[6] T. DebRoy,et al. Scientific, technological and economic issues in metal printing and their solutions , 2019, Nature Materials.
[7] T L Burnett,et al. Completing the picture through correlative characterization , 2019, Nature Materials.
[8] J. Cairney,et al. Fatigue properties of AlSi10Mg produced by Additive Layer Manufacturing , 2019, International Journal of Fatigue.
[9] Moataz M. Attallah,et al. Linking microstructure and processing defects to mechanical properties of selectively laser melted AlSi10Mg alloy , 2018, Theoretical and Applied Fracture Mechanics.
[10] Zheng Zhang,et al. Low cycle fatigue behavior of AlSi10Mg(Cu) alloy at high temperature , 2018, Materials Characterization.
[11] R. E. Danielson,et al. Porosity , 2018, SSSA Book Series.
[12] Michael Gschweitl,et al. Qualification of AM parts: Extreme value statistics applied to tomographic measurements , 2017 .
[13] T. Pollock,et al. 3D printing of high-strength aluminium alloys , 2017, Nature.
[14] S. Wu,et al. The imaging of failure in structural materials by synchrotron radiation X-ray microtomography , 2017 .
[15] P J Withers,et al. The Influence of Porosity on Fatigue Crack Initiation in Additively Manufactured Titanium Components , 2017, Scientific Reports.
[16] Jie Xu,et al. Shear fracture mechanism in micro-tension of an ultrafine-grained pure copper using synchrotron radiation X-ray tomography , 2017 .
[17] J. Buffière,et al. Location, location & size: defects close to surfaces dominate fatigue crack initiation , 2017, Scientific Reports.
[18] Fabien Szmytka,et al. 3D characterization and modeling of low cycle fatigue damage mechanisms at high temperature in a cast aluminum alloy , 2017 .
[19] J.C.R. Pereira,et al. A new ultra-low cycle fatigue model applied to the X60 piping steel , 2016 .
[20] P. Prangnell,et al. Porosity Regrowth During Heat Treatment of Hot Isostatically Pressed Additively Manufactured Titanium Components , 2016 .
[21] E. Maire,et al. Characterization and micromechanical modelling of microstructural heterogeneity effects on ductile fracture of 6xxx aluminium alloys , 2016 .
[22] Cheng Yu,et al. Corner fatigue cracking behavior of hybrid laser AA7020 welds by synchrotron X-ray computed microtomography , 2016 .
[23] Chor Yen Yap,et al. Review of selective laser melting : materials and applications , 2015 .
[24] Peter D. Lee,et al. Characterisation of short fatigue cracks in titanium alloy IMI 834 using X-ray microtomography , 2015 .
[25] F. Walther,et al. Computed tomography for characterization of fatigue performance of selective laser melted parts , 2015 .
[26] Laurent Jacques,et al. Heterogenous void growth revealed by in situ 3-D X-ray mocrotomography using automatic cavity tracking , 2014 .
[27] G. Nicoletto,et al. Characterization of microshrinkage casting defects of Al–Si alloys by X-ray computed tomography and metallography , 2012 .
[28] M. Preuss,et al. Fatigue and Damage in Structural Materials Studied by X-Ray Tomography , 2012 .
[29] N. Chawla,et al. Quantifying the effect of porosity on the evolution of deformation and damage in Sn-based solder joints by X-ray microtomography and microstructure-based finite element modeling , 2012 .
[30] L. Murr,et al. Microstructures and mechanical behavior of Inconel 718 fabricated by selective laser melting , 2012 .
[31] P. Withers,et al. Fibre bridging during high temperature fatigue crack growth in Ti/SiC composites , 2012 .
[32] E. Maire,et al. Validation of void growth models using X-ray microtomography characterization of damage in dual phase steels , 2011 .
[33] Thomas Pardoen,et al. The growth and coalescence of ellipsoidal voids in plane strain under combined shear and tension , 2011 .
[34] T. C. Lindley,et al. Quantification of the interaction within defect populations on fatigue behavior in an aluminum alloy , 2009 .
[35] E. Maire,et al. Initiation and growth of damage in a dual-phase steel observed by X-ray microtomography , 2008 .
[36] Arnaud Weck,et al. Visualization by X-ray tomography of void growth and coalescence leading to fracture in model materials , 2008 .
[37] G. Deierlein,et al. Cyclic Void Growth Model to Assess Ductile Fracture Initiation in Structural Steels due to Ultra Low Cycle Fatigue , 2007 .
[38] E. Maire,et al. Experimental study of porosity and its relation to fatigue mechanisms of model Al–Si7–Mg0.3 cast Al alloys , 2001 .
[39] Thomas Pardoen,et al. An extended model for void growth and coalescence - application to anisotropic ductile fracture , 2000 .
[40] Hitoshi Kuwamura,et al. Ductile Crack as Trigger of Brittle Fracture in Steel , 1997 .
[41] Bjørn Skallerud,et al. Fatigue life assessment of aluminum alloys with casting defects , 1993 .
[42] C. M. Sonsino,et al. Fatigue strength and applications of cast aluminium alloys with different degrees of porosity , 1993 .
[43] J. R. Griffiths,et al. CASTING DEFECTS AND THE FATIGUE BEHAVIOUR OF AN ALUMINIUM CASTING ALLOY , 1990 .
[44] P. Thomason,et al. Ductile Fracture of Metals , 1990 .
[45] J. Bowles. Oxides , 1977, Encyclopedia of Geology.
[46] D. M. Tracey,et al. On the ductile enlargement of voids in triaxial stress fields , 1969 .
[47] SCIENTIFIC , 1940 .
[48] N. Saintier,et al. Investigation of the effect of porosity on the high cycle fatigue behaviour of cast Al-Si alloy by X-ray micro-tomography , 2018 .
[49] M. Tang,et al. Oxides, porosity and fatigue performance of AlSi10Mg parts produced by selective laser melting , 2017 .
[50] S. Beretta,et al. A comparison of fatigue strength sensitivity to defects for materials manufactured by AM or traditional processes , 2017 .
[51] S. Wu,et al. Porosity, Element Loss, and Strength Model on Softening Behavior of Hybrid Laser Arc Welded Al-Zn-Mg-Cu Alloy with Synchrotron Radiation Analysis , 2013 .
[52] F. Delannay,et al. Micromechanics of room and high temperature fracture in 6xxx Al alloys , 2007 .