Phase-Field Modeling of Nonequilibrium Solidification Processes in Additive Manufacturing

Abstract

This project models dendrite growth during nonequilibrium solidification of binary alloys using the phase-field method (PFM). Understanding the dendrite formation processes is important because the microstructural features directly influence mechanical properties of the produced parts. An improved understanding of dendrite formation may inform design protocols to achieve optimized process parameters for controlled microstructures and enhanced properties of materials. To this end, this work implements a phase-field model to simulate directional solidification of binary alloys. For applications involving strong nonequilibrium effects, a modified antitrapping current model is incorporated to help eject solute into the liquid phase based on experimentally calibrated, velocity-dependent partitioning coefficient. Investigated allow systems include SCN, Si-As, and Ni-Nb. The SCN alloy is chosen to verify the computational method, and the other two are selected for a parametric study due to their different diffusion properties. The modified antitrapping current model is compared with the classical model in terms of predicted dendrite profiles, tip undercooling, and tip velocity. Solidification parameters--the cooling rate and the strength of anisotropy--are studied to reveal their influences on dendrite growth. Computational results demonstrate effectiveness of the PFM and the modified antitrapping current model in simulating rapid solidification with strong nonequilibrium at the interface.

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Document Details

Document Type
Technical Report
Publication Date
Nov 01, 2021
Accession Number
AD1155099

Entities

People

  • Jeffrey B. Allen
  • Ling Liu
  • Mohaiminul Islam
  • Robert D. Moser
  • Zackery B. Mcclelland

Organizations

  • Engineer Research and Development Center
  • Temple University

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Additive Manufacturing
  • Alloys
  • Binary Alloys
  • Coefficients
  • Computational Science
  • Diffusion Coefficient
  • Engineering
  • Engineers
  • Free Energy
  • Information Systems
  • Liquid Phases
  • Manufacturing
  • Materials
  • Materials Engineering
  • Materials Science
  • Mechanical Properties
  • Phase
  • Phase Diagrams
  • Phase Transformations
  • Physical Properties
  • Physics
  • Physics Laboratories

Fields of Study

  • Materials science

Readers

  • Computational Fluid Dynamics (CFD)
  • Computational Modeling and Simulation
  • Powder metallurgy of Titanium alloys.