Skip to main navigation Skip to search Skip to main content

Time-Resolved In Situ Measurements During Rapid Alloy Solidification: Experimental Insight for Additive Manufacturing

  • Joseph T. McKeown
  • , Kai Zweiacker
  • , Can Liu
  • , Daniel Robert Coughlin
  • , Amy J. Clarke
  • , Jon Kevin Scott Baldwin
  • , John W Gibbs
  • , John D. Roehling
  • , Seth D Imhoff
  • , Paul Jacob Gibbs
  • , Damien Tourret
  • , Jörg M.K. Wiezorek
  • , Geoffrey H. Campbell

Research output: Contribution to journalArticlepeer-review

69 Scopus citations

Abstract

Additive manufacturing (AM) of metals and alloys is becoming a pervasive technology in both research and industrial environments, though significant challenges remain before widespread implementation of AM can be realized. In situ investigations of rapid alloy solidification with high spatial and temporal resolutions can provide unique experimental insight into microstructure evolution and kinetics that are relevant for AM processing. Hypoeutectic thin-film Al–Cu and Al–Si alloys were investigated using dynamic transmission electron microscopy to monitor pulsed-laser-induced rapid solidification across microsecond timescales. Solid–liquid interface velocities measured from time-resolved images revealed accelerating solidification fronts in both alloys. The observed microstructure evolution, solidification product, and presence of a morphological instability at the solid–liquid interface in the Al–4 at.%Cu alloy are related to the measured interface velocities and small differences in composition that affect the thermophysical properties of the alloys. These time-resolved in situ measurements can inform and validate predictive modeling efforts for AM.

Original languageEnglish
Pages (from-to)985-999
Number of pages15
JournalJOM
Volume68
Issue number3
DOIs
StatePublished - Mar 1 2016

Fingerprint

Dive into the research topics of 'Time-Resolved In Situ Measurements During Rapid Alloy Solidification: Experimental Insight for Additive Manufacturing'. Together they form a unique fingerprint.

Cite this