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Predictive Model to Design for High Cycle Fatigue of Stainless Steels Produced by Metal Additive Manufacturing

https://doi.org/10.2139/ssrn.4103898
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23/23 checkable references clean · checked 2026-09-10

Every reference with a DOI in the deposited reference list resolved to a known work in Crossref or DataCite at the dated check, and none carried a retraction, withdrawal, or removal notice.

18 without a DOI — not checked. A reference deposited without a DOI is never matched by title or guessed at; it stays outside the checked set, and this line discloses that.

The 23 checked references that resolve
resolves10.1016/j.ijfatigue.2021.106531
Fatigue from Defect: Influence of Size, Type, Position, Morphology and Loading
resolves10.1016/j.acme.2014.02.003
Application of X-ray CT method for discontinuity and porosity detection in 316L stainless steel parts produced with SLM technology
resolves10.1016/j.matdes.2017.05.091
Qualification of AM parts: Extreme value statistics applied to tomographic measurements
resolves10.1016/j.matdes.2019.108091
Defect characteristics and analysis of their variability in metal L-PBF additive manufacturing
resolves10.3390/ma12244203
Influences of Horizontal and Vertical Build Orientations and Post-Fabrication Processes on the Fatigue Behavior of Stainless Steel 316L Produced by Selective Laser Melting
resolves10.1016/j.ijfatigue.2015.12.003
Critical assessment of the fatigue performance of additively manufactured Ti–6Al–4V and perspective for future research
resolves10.1016/j.ijfatigue.2016.06.020
A comparison of fatigue strength sensitivity to defects for materials manufactured by AM or traditional processes
resolves10.1016/j.procir.2016.11.138
Dynamical Fatigue Behavior of Additive Manufactured Products For a Fundamental Life cycle Approach
resolves10.1016/j.msea.2015.10.068
Mechanical behavior of additive manufactured, powder-bed laser-fused materials
resolves10.1016/j.ijfatigue.2020.106063
Fatigue behavior of additive manufactured 316L stainless steel under axial versus rotating-bending loading: Synergistic effects of stress gradient, surface roughness, and volumetric defects
resolves10.1557/jmr.2014.157
On the fatigue properties of metals manufactured by selective laser melting – The role of ductility
resolves10.1016/j.ijfatigue.2019.03.022
Investigation of the anisotropic fatigue behavior of additively manufactured structures made of AISI 316L with short-time procedures PhyBaLLIT and PhyBaLCHT
resolves10.1016/j.ijfatigue.2018.12.016
High cycle fatigue and ratcheting interaction of laser powder bed fusion stainless steel 316L: Fracture behaviour and stress-based modelling
resolves10.1016/j.ijfatigue.2019.01.013
Effect of post-treatments on the fatigue behaviour of 316L stainless steel manufactured by laser powder bed fusion
resolves10.1016/j.matdes.2020.108962
Microstructural analysis and fatigue crack initiation modelling of additively manufactured 316L after different heat treatments
resolves10.1016/j.engfracmech.2014.03.008
On the fatigue crack growth behavior in 316L stainless steel manufactured by selective laser melting
resolves10.1111/ffe.13077
Fatigue of additively manufactured 316L stainless steel: The influence of porosity and surface roughness
resolves10.1016/j.msea.2020.140660
Effects of manufacturing parameters and mechanical post-processing on stainless steel 316L processed by laser powder bed fusion
resolves10.1007/s11837-017-2640-z
Elucidating the Relations Between Monotonic and Fatigue Properties of Laser Powder Bed Fusion Stainless Steel 316L
resolves10.1088/2051-672X/3/2/024002
Surface texture measurement for additive manufacturing
resolves10.1016/j.matdes.2018.07.015
Effect of heat treatments on microstructural evolution of additively manufactured and wrought 17-4PH stainless steel
resolves10.1016/j.ijfatigue.2019.02.039
Fatigue behavior of additively manufactured 17-4 PH stainless steel: Synergistic effects of surface roughness and heat treatment
resolves10.1016/j.ijfatigue.2015.10.007
Review and application of Rainflow residue processing techniques for accurate fatigue damage estimation
The 18 references without a DOI — listed, not checked
no DOI — not checkedref1
no DOI — not checkedWhat Is Going on with Fatigue of Additively Manufactured Metals?
no DOI — not checkedPredicting the Fatigue Life of an AlSi10Mg Alloy Manufactured via Laser Powder Bed Fusion by Using Data from Computed Tomography
no DOI — not checkedQuality Control of AlSi10Mg Produced by SLM: Metallography versus CT Scans for Critical Defect Size Assessment
no DOI — not checkedFatigue Life Estimation of Additive Manufactured Parts in the As-built Surface Condition
no DOI — not checkedref13
no DOI — not checkedref14
no DOI — not checkedref15
no DOI — not checkedref16
no DOI — not checkedref17
no DOI — not checkedComparison of Rotating-Bending and Axial Fatigue Behaviors of LB-PBF 316L
no DOI — not checkedref25
no DOI — not checkedref29
no DOI — not checkedEffect of Build Orientation on the Fatigue Behavior of Stainless Steel 316L Manufactured via a Laser-Powder Bed Fusion Process
no DOI — not checkedEOS GmbH-Electro Optical Systems
no DOI — not checkedref35
no DOI — not checkedEOS GmbH-Electro Optical Systems
no DOI — not checkedref37
What this badge says. CiteStamped means the CHECKABLE references of this work were clean at the dated check: each resolved to a known work in a public registry, and none carried a retraction notice at that time. It says nothing about the quality, findings, or importance of the work itself, and nothing about references deposited without a DOI.

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