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Improved Thermo-Mechanical Fatigue Resistance of Al-Si-Cu 319 Alloys by Microalloying with Mo

Liu Kun, Wang Shuai, Hu Peng, Pan Lei et Chen X-Grant. (2023). Improved Thermo-Mechanical Fatigue Resistance of Al-Si-Cu 319 Alloys by Microalloying with Mo. Materials, 16, (9), e3515.

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URL officielle: http://dx.doi.org/10.3390/ma16093515

Résumé

Thermo-mechanical fatigue (TMF) is one of the most detrimental failures of critical engine components and greatly limits their service life. In this study, the out-of-phase TMF (OP-TMF) behavior in Al-Si-Cu 319 cast alloys microalloyed with Mo was systematically investigated under various strain amplitudes ranging from 0.1–0.6% and temperature cycling at 60–300 °C and compared with the base 319 alloy free of Mo. Cyclic stress softening occurred in both experimental alloys when applying the TMF loading, resulting from the coarsening of θ’-Al2Cu precipitates. However, the softening rate of the Mo-containing alloy was lower than that of the base 319 alloy because of its lower θ’-Al2Cu precipitate coarsening rate per cycle. The Mo-containing alloy exhibited a longer TMF lifetime than the base alloy at the same strain amplitude. Microalloying 319 alloy with Mo enhanced the TMF resistance mainly by slowing the coarsening of θ’-Al2Cu precipitates and providing supplementary strengthening from thermally stable Mo-containing α-dispersoids distributed in the Al matrix. The energy-based model was successfully applied for predicting the TMF lifetime with a low life predictor factor, which agreed well with the experimentally measured fatigue cycles.

Type de document:Article publié dans une revue avec comité d'évaluation
ISSN:1996-1944
Volume:16
Numéro:9
Pages:e3515
Version évaluée par les pairs:Oui
Date:2023
Identifiant unique:10.3390/ma16093515
Sujets:Sciences naturelles et génie > Génie
Sciences naturelles et génie > Génie > Génie des matériaux et génie métallurgique
Sciences naturelles et génie > Sciences appliquées
Département, module, service et unité de recherche:Départements et modules > Département des sciences appliquées > Module d'ingénierie
Mots-clés:Al-Si-Cu 319 alloy, thermo-mechanical fatigue, Mo addition, precipitation coarsening, dispersoids, energy-based prediction model, alliage Al-Si-Cu 319, fatigue thermomécanique, addition de Mo, grossissement par précipitation, dispersoïdes, modèle de prédiction énergétique
Déposé le:07 juin 2023 18:29
Dernière modification:07 juin 2023 18:29
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