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Effect of processing parameters on microstructure in brazing of Al–Si alloys

  • I. V. Shutov
  • , L. V. Kamaeva
  • , M. D. Krivilyov
  • , C. N. Yu
  • , S. Dj Mesarovic
  • , D. P. Sekulic

Producción científica: Articlerevisión exhaustiva

9 Citas (Scopus)

Resumen

Phase transformations during melting, isothermal dwell and solidification of composite Al-Si+flux braze material are studied experimentally. A multistep mechanism of melting conjugated with Si diffusion, mushy zone formation and chemical reaction between flux and aluminum oxide is discussed. The impact of different processing parameters on final microstructure is described and quantified.

Idioma originalEnglish
Número de artículo125287
PublicaciónJournal of Crystal Growth
Volumen530
DOI
EstadoPublished - ene 15 2020

Nota bibliográfica

Publisher Copyright:
© 2019

Financiación

This work has been performed in the framework of the international space project “BRazing of Aluminum Alloys IN Space (BRAINS)” sponsored by Roscosmos (project REAL) and NASA (project No. NNX17AB52G ) at Udmurt State University, Russia and University of Kentucky, USA. The braze material with imbedded flux TRILLIUM™ Technology is protected by United States Patent No. 8871356 as well as by corresponding patents and pending patent applications in other major countries. TRILLIUM™ Technology is a registered Trademark of Gränges AB, Sweden. This work has been performed in the framework of the international space project ?BRazing of Aluminum Alloys IN Space (BRAINS)? sponsored by Roscosmos (project REAL) and NASA (project No. NNX17AB52G) at Udmurt State University, Russia and University of Kentucky, USA. The braze material with imbedded flux TRILLIUM? Technology is protected by United States Patent No. 8871356 as well as by corresponding patents and pending patent applications in other major countries. TRILLIUM? Technology is a registered Trademark of Gr?nges AB, Sweden.

FinanciadoresNúmero del financiador
Udmurt State University
National Aeronautics and Space AdministrationNNX17AB52G
University of Kentucky
Shell United States8871356

    ASJC Scopus subject areas

    • Condensed Matter Physics
    • Inorganic Chemistry
    • Materials Chemistry

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