Skip to main content

NOTICE: Due to a lapse in annual appropriations, most of this website is not being updated. Learn more.

Form submissions will still be accepted but will not receive responses at this time. Sections of this site for programs using non-appropriated funds (such as NVLAP) or those that are excepted from the shutdown (such as CHIPS and NVD) will continue to be updated.

U.S. flag

An official website of the United States government

Official websites use .gov
A .gov website belongs to an official government organization in the United States.

Secure .gov websites use HTTPS
A lock ( ) or https:// means you’ve safely connected to the .gov website. Share sensitive information only on official, secure websites.

Formation Mechanisms of Self-Organized Core/Shell and Core/Shell/Corona Microstructure in Liquid droplets of Immiscible Alloys

Published

Author(s)

R. P. Shi, C. P. Wang, Daniel Wheeler, X. J. Liu, Y. Wang

Abstract

Formation mechanisms of self-organized core/shell (CS) and core/shell/corona (CSC) microstructures observed in liquid droplets of immiscible Cu-Fe based alloys produced by gas atomization processing are investigated with computer simulations. The simulation method is based on a phase field approach that incorporates spinodal decomposition, subsequent coarsening, decomposition-induced fluid flow, and Marangoni motion of second-phase droplets immersed in a major liquid-phase matrix. The roles played by each of these processes at different stages during the formation of CS and CSC structures are analyzed systematically as a function of droplet size. Other concurrent mechanisms responsible for the CS and CSC formation, such as coalescence and collisions, and attractive interactions between second-phase droplets, are identified. The differences in volume fraction and surface energies between the Cu-rich and Fe-rich liquid phases are also investigated to ascertain the final morphologies of CS and CSC microstructures. The simulations demonstrate that the influence of the physical process varies (determined by system size) at each stage of the evolution during CS and CSC formation.
Citation
ACTA Materialia

Keywords

Fe-Cu, Spinodal Decomposition, Fluid Flow, Marangoni Convection, Phase Field

Citation

Shi, R. , Wang, C. , Wheeler, D. , Liu, X. and Wang, Y. (2013), Formation Mechanisms of Self-Organized Core/Shell and Core/Shell/Corona Microstructure in Liquid droplets of Immiscible Alloys, ACTA Materialia, [online], https://tsapps.nist.gov/publication/get_pdf.cfm?pub_id=911516 (Accessed October 9, 2025)

Issues

If you have any questions about this publication or are having problems accessing it, please contact [email protected].

Created February 1, 2013, Updated September 29, 2025
Was this page helpful?