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<field name="value">Díaz Portugal, Andrés</field>
<field name="authority">147</field>
<field name="confidence">600</field>
<field name="orcid_id">0000-0002-2344-1955</field>
<field name="value">Cuesta Segura, Isidoro Iván</field>
<field name="authority">135</field>
<field name="confidence">600</field>
<field name="orcid_id">0000-0003-4088-9302</field>
<field name="value">Alegre Calderón, Jesús Manuel</field>
<field name="authority">16</field>
<field name="confidence">600</field>
<field name="orcid_id">0000-0003-3629-2570</field>
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<field name="value">2023-01-24T13:22:49Z</field>
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<field name="value">2021-10</field>
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<field name="value">2452-3216</field>
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<field name="value">10.1016/j.prostr.2021.12.033</field>
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<field name="value">Artículo publicado en el V. 34 dedicado a: The second European Conference on the Structural Integrity of Additively Manufactured Materials</field>
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<field name="value">Titanium alloys are widely employed in aerospace and automotive industries where lightweight applications are required. Additive Manufacturing (AM) processes have been proposed in order to reduce material waste and optimise mechanical properties. In addition, throughout these manufacturing processes and during service life, hydrogen uptake is expected, and the corresponding modification of mechanical properties needs to be modelled. Hydrogenation process including diffusion, trapping and hydride formation in a Ti-6Al-4V alloy during cold dwell fatigue loading, a common failure mode of titanium alloys, is simulated here. All governing equations are implemented in ABAQUS user subroutines. A boundary layer approach is used to simulate how hydrogen redistribution affects hydride kinetics near a blunting crack tip, in which cyclic loading is implemented considering different dwell times. The influence of AM techniques, especially Selective Laser Melting, is expected to promote the increase in martensite phase and microstructure defects due to rapid cooling; thus, the influence of martensite volume fraction and of trapping density on hydrogen redistribution near the crack tip is analysed. The possibility to implement hydrogen and hydride-induced dilatation is also presented, as well as a hydrogen-dependent localised plasticity model. This framework facilitates the prediction of how additive manufacturing processes affect susceptibility to hydrogen embrittlement in Ti-6Al-4V components subjected to dwell fatigue.</field>
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<field name="value">The authors gratefully acknowledge financial support from the Junta of Castile and Leon through grant BU-002- P20, co-financed by FEDER funds.</field>
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<field name="value">eng</field>
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<field name="value">Elsevier</field>
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<field name="value">Procedia Structural Integrity. 2021, V. 34, p. 229-234</field>
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<field name="value">https://doi.org/10.1016/j.prostr.2021.12.033</field>
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<field name="value">info:eu-repo/grantAgreement/Junta de Castilla y León//BU-002-P20//Optimización de las técnicas de post-procesado para la mejora de propiedades mecánicas y de fatiga en componentes realizados mediante fabricación aditiva</field>
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<field name="value">Finite Element modelling</field>
<field name="value">Hydrogen embrittlement</field>
<field name="value">Hydride formation</field>
<field name="value">Ti-6Al-4V</field>
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<field name="value">Materials</field>
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<field name="value">Modelling hydrogenation during cold dwell fatigue of additively manufactured titanium alloys</field>
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<field name="value">34</field>
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