Reprint

Numerical Simulation of Solidification Processes

Edited by
September 2023
212 pages
  • ISBN978-3-0365-8600-7 (Hardback)
  • ISBN978-3-0365-8601-4 (PDF)

This book is a reprint of the Special Issue Numerical Simulation of Solidification Processes that was published in

Chemistry & Materials Science
Engineering
Summary

Solidification is a critical step for many manufacturing processes. The importance comes from the fact that the solidification microstructure has a significant influence on the properties of the solidified materials. The kinetics of solidification also determines the distribution of solute atoms, which eventually leads to micro-segregation, secondary phases, and formation of various defects, which exert enormous influence on mechanical properties. By combining the bedrock computational physics and informatics with systematic experiments and advanced manufacturing, we can reduce the cost, risk, and cycle time for new product development. Numerical simulation of solidification processes can help scientists to gain a better understanding of the kinetics governing the macroscopic as well as microscopic features of the solidification process. From an industrial point of view, solidification modeling enables engineers to predict the properties of the material and subsequently modify the process parameters to produce materials of higher quality. This Special Issue embraced studies on numerical simulation of solidification processes for a variety of applications and processes. In this collection, we present eleven high-quality papers authored by distinguished researchers, encompassing a diverse array of solidification modeling studies. Topics include steel casting and solidification, permeability, segregation, cracking, thermal distortion, dendrite growth, grain morphology, welding, and additive manufacturing.

Format
  • Hardback
License and Copyright
© 2022 by the authors; CC BY-NC-ND license
Keywords
phase-field model; columnar-to-equiaxed transition; laser welding; interaction; ingot; equiaxed grain; solidification; macrosegregation; surface cooling intensity; solute element; micro-segregation; central crack; analytical model; the strain of the solid shell; solidification; permeability; phase field; additive manufacturing; measurement; scaled model; modeling of additive manufacturing processes; Laser Powder Bed Fusion; rapid solidification; grain structure evolution; texture and grain morphology; superalloys; IN625; pattern formation; tip splitting; phase-field model; grain boundary groove; microstructure formation; in situ radiography; additive manufacturing; solidification modeling; beta-titanium; CET modeling; solidification; peritectic steel; thermal distortion; thermo-elasto-viscoplastic model; CAFE; secondary dendrite arm spacing; equiaxed crystal ratio; element content; macrosegregation; heavy reduction; V segregation; bearing steel bloom; reduction parameters; crack; solidification; microstructure; numerical modeling; large-scale simulation; dendrite growth; n/a