Reprint

Material Modeling in Multiphysics Simulation

Edited by
May 2024
200 pages
  • ISBN978-3-7258-1085-7 (Hardback)
  • ISBN978-3-7258-1086-4 (PDF)

This is a Reprint of the Special Issue Material Modeling in Multiphysics Simulation that was published in

Chemistry & Materials Science
Engineering
Summary

Virtual prototyping techniques, generally based on numerical methods, are widely used in the process of designing an industrial product. In recent decades, the demand for strong improvements in terms of productivity, reliability, and cost reduction have been fundamental considerations in this form of design, often requiring more than one simultaneously occurring physical field (thermal, mechanical, electrical, metallurgical, etc.) to be taken into account. At present, a huge amount of commercial code and a huge number of new algorithms have been developed to perform multiphysics simulations; nevertheless, the availability of a suitable material model often presents a bottleneck in obtaining reliable results. This reprint brought together a series of recent scientific contributions addressing several topics in the field of the physical-based modeling of material behavior and manufacturing processes. The quality of scientific contributions in this reprint can aid scholars and scientists in their research activity.

Format
  • Hardback
License and Copyright
© 2024 by the authors; CC BY-NC-ND license
Keywords
aluminium; ultrasonic melt treatment; cavitation; CFD simulation; structure refinement; sequence deep learning; neural networks; casting; steel; solidification; multiphysics; additive manufacturing; laser powder bed fusion; thin-walled structures; warpage; finite element analysis; induction heating; mathematical modeling; process; control; automation; optimization; waveguide; mathematical modelling; computer simulation; austenite decomposition kinetics; microstructure transformations; hybrid modeling; dynamic material processes; evolving domains; data-driven modeling; genetic algorithm symbolic regression; cooling process; additive manufacturing; microstructure; properties; steel; modeling; simulation; Pyrowear 53; inverse heat transfer; DEFORM3D; low pressure carburizing; high-pressure gas quenching; simufact; phase transformations; latent heat; Koistinen–Marburger; extrusion; Inconel 718; metal-forming simulation; steel continuous casting process; travelling slice; FE transient thermal model; temperature evolution; metallurgical length; density of free randomly moving (RM) electrons; probability density function; density of states (DOS); mean free path of electrons; resistivity of metals; diffusion coefficient; drift mobility; Hall effect; Hall mobility; n/a