Microstructure evolution of Incoloy 800H in industrial environment and correlation with creep mechanisms from literature

Author:

Rojas-Ulloa C.1ORCID,Morch H.1,Tuninetti V.2,Tchoufang Tchuindjang J.3,Pensis O.4,Di Giovanni A.4,Mertens A.3,Duchêne L.1,Habraken A.M.15

Affiliation:

1. ArGEnCo Department, MS2F Sector, MSM Team, University of Liège, Liège, Belgium

2. Department of Mechanical Engineering, Universidad de La Frontera, Temuco, Chile

3. Department of Aerospace and Mechanical Engineering, MMS team, University of Liège, Liège, Belgium

4. Drever International S.A., Liège, Belgium

5. Fonds de la Recherche Scientifique −F.R.S.−F.N.R.S. Belgium, Bruxelles, Belgium

Funder

Agencia Nacional de Investigación y Desarrollo

Fonds pour la Formation à la Recherche dans l’Industrie et dans l’Agriculture

Wallonie-Bruxelles International

Publisher

Informa UK Limited

Reference58 articles.

1. Spindler M. ECCC data sheet Steel. 1998; X8NiCrAlTi 32-21 (1.4959 Alloy 800H) 95–97.

2. Dynamic and static measurements of elastic constants with data on 2 1/4 Cr--1 Mo steel, types 304 and 316 stainless steels, and alloy 800H

3. Correlation between tensile and creep data in alloy 800H at 850°C

4. Wilson DJ, Freeman JW, Clarence SA. Creep-rupture properties of sandvik sanicro 31 tubing. Michigan, U.S: The University of Michigan, Ann Arbor; 1968.

5. Booker MK. An analytical representation of the creep and creep-rupture behavior of alloy 800H. Oak Ridge, Tennessee, U.S: Oak Ridge Laboratory; 1978.

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