Characteristic Features of Ultrafine-Grained Ti-45 wt.% Nb Alloy under High Cycle Fatigue.

Hurst exponent Ti-45 wt.% Nb alloy fatigue testing infrared thermography method surface morphology ultrafine-grained structure

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
17 Sep 2021
Historique:
received: 19 08 2021
revised: 13 09 2021
accepted: 15 09 2021
entrez: 28 9 2021
pubmed: 29 9 2021
medline: 29 9 2021
Statut: epublish

Résumé

The paper presents the results of fatigue-testing ultrafine-grained and coarse-grained Ti-45 wt.% Nb alloy samples under very high cycle fatigue (gigacycle regime), with the stress ratio R = -1. The ultrafine-grained (UFG) structure in the investigated alloy was formed by the two-stage SPD method, which included multidirectional forging (abc-forging) and multipass rolling in grooved rollers, with further recrystallization annealing. The UFG structure of the Ti-45 wt.% Nb alloy samples increased the fatigue limit under the high-cycle fatigue conditions up to 1.5 times compared with that of the coarse-grained (CG) samples. The infrared thermography method was applied to investigate the evolution of temperature fields in the samples under cyclic loading. Based on numerical morphology analysis, the scale invariance (the Hurst exponent) and qualitative differences for UFG and CG structures were determined. The latter resulted from the initiation and propagation of fatigue cracks in both ultra-fine grained and coarse-grained alloy samples under very high-cycle fatigue loading.

Identifiants

pubmed: 34576589
pii: ma14185365
doi: 10.3390/ma14185365
pmc: PMC8469476
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : The Government research assignment for ISPMS SB RAS
ID : FWRW-2021-0004
Organisme : The Government contract assignment for ICMM UB RAS
ID : AAAA-A19-119013090021-5

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Auteurs

Aikol M Mairambekova (AM)

Institute of Strength Physics and Materials Science of SB RAS, 2/4, Akademicheskii pr., 634055 Tomsk, Russia.
Department of Solid Mechanics, Faculty of Physics and Engineering, National Research Tomsk State University, 36, Lenina pr., 634050 Tomsk, Russia.

Anna Y Eroshenko (AY)

Institute of Strength Physics and Materials Science of SB RAS, 2/4, Akademicheskii pr., 634055 Tomsk, Russia.

Vladimir A Oborin (VA)

Institute of Continuous Media Mechanics of UB RAS, 614013 Perm, Russia.

Mikhail V Bannikov (MV)

Institute of Continuous Media Mechanics of UB RAS, 614013 Perm, Russia.

Valentina V Chebodaeva (VV)

Institute of Strength Physics and Materials Science of SB RAS, 2/4, Akademicheskii pr., 634055 Tomsk, Russia.

Alena I Terekhina (AI)

Institute of Continuous Media Mechanics of UB RAS, 614013 Perm, Russia.

Oleg B Naimark (OB)

Institute of Continuous Media Mechanics of UB RAS, 614013 Perm, Russia.

Andrey I Dmitriev (AI)

Institute of Strength Physics and Materials Science of SB RAS, 2/4, Akademicheskii pr., 634055 Tomsk, Russia.

Yurii P Sharkeev (YP)

Institute of Strength Physics and Materials Science of SB RAS, 2/4, Akademicheskii pr., 634055 Tomsk, Russia.
Research School of High-Energy Physics, National Research Tomsk Polytechnic University, 30, Lenina pr., 634050 Tomsk, Russia.

Classifications MeSH