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Artículo

Chromium-based bcc-superalloys strengthened by iron supplements

Ma, Kan; Blackburn, Thomas; Magnussen, Johan P.; Kerbstadt, Michael; Ferreirós, Pedro AntonioIcon ; Pinomaa, Tatu; Hofer, Christina; Hopkinson, David G.; Day, Sarah J.; Bagot, Paul A.J.; Moody, Michael P.; Galetz, Mathias C.; Knowles, Alexander J.
Fecha de publicación: 09/2023
Editorial: Pergamon-Elsevier Science Ltd
Revista: Acta Materialia
ISSN: 1359-6454
Idioma: Inglés
Tipo de recurso: Artículo publicado
Clasificación temática:
Ingeniería de los Materiales

Resumen

Chromium alloys are being considered for next-generation concentrated solar power applications operating > 800 °C. Cr offers advantages in melting point, cost, and oxidation resistance. However, improvements in mechanical performance are needed. Here, Cr-based body-centred-cubic (bcc) alloys of the type Cr(Fe)-NiAl are investigated, leading to ‘bcc-superalloys’ comprising a bcc-Cr(Fe) matrix (β) strengthened by ordered-bcc NiAl intermetallic precipitates (β’), with iron additions to tailor the precipitate volume fraction and mechanical properties at high temperatures. Computational design using CALculation of PHAse Diagram (CALPHAD) predicts that Fe increases the solubility of Ni and Al, increasing precipitate volume fraction, which is validated experimentally. Nano-scale, highly-coherent B2-NiAl precipitates with lattice misfit ∼ 0.1% are formed in the Cr(Fe) matrix. The Cr(Fe)-NiAl A2-B2 alloys show remarkably low coarsening rate (∼102 nm3/h at 1000 °C), outperforming ferritic-superalloys, cobalt- and nickel-based superalloys. Low interfacial energies of ∼ 40/20 mJ/m2 at 1000/1200 °C are determined based on the coarsening kinetics. The low coarsening rates are principally attributed to the low solubility of Ni and Al in the Cr matrix. The alloys show high compressive yield strength of ∼320 MPa at 1000 °C. The Fe-modified alloy exhibits resistance to age softening, related to the low coarsening rate as well as the relatively stable Orowan strengthening as a function of precipitate radius. Microstructure tailoring with Fe additions offers a new design route to improve the balance of properties in “Cr-superalloys”, accelerating their development as a new class of high-temperature materials.
Palabras clave: BCC-SUPERALLOY , CHROMIUM , COARSENING KINETICS , ELECTRON MICROSCOPY , STRENGTHENING
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info:eu-repo/semantics/openAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution 2.5 Unported (CC BY 2.5)
Identificadores
URI: http://hdl.handle.net/11336/225101
DOI: http://dx.doi.org/10.1016/j.actamat.2023.119183
Colecciones
Articulos(SEDE CENTRAL)
Articulos de SEDE CENTRAL
Citación
Ma, Kan; Blackburn, Thomas; Magnussen, Johan P.; Kerbstadt, Michael; Ferreirós, Pedro Antonio; et al.; Chromium-based bcc-superalloys strengthened by iron supplements; Pergamon-Elsevier Science Ltd; Acta Materialia; 257; 9-2023; 1-16
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