Multiphysics modelling of the metals casting process
- 31 December 1996
- journal article
- Published by The Royal Society in Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences
- Vol. 452 (1946) , 459-486
- https://doi.org/10.1098/rspa.1996.0024
Abstract
Metals casting is a process governed by the interaction of a range of physical phenomena. Most computational models of this process address only what are conventionally regarded as the primary phenomena—heat conduction and solidification. However, to predict the formation of porosity (a factor of key importance in cast quality) requires the modelling of the interaction of the fluid flow, heat transfer, solidification and the development of stress-deformation in the solidified part of a component. In this paper, a model of the casting process is described which addresses all the main continuum phenomena involved in a coupled manner. The model is solved numerically using novel finite volume unstructured mesh techniques, and then applied to both the prediction of shape deformation (plus the subsequent formation of a gap at the metal-mould interface and its impact on the heat transfer behaviour) and porosity formation in solidifying metal components. Although the porosity prediction model is phenomenologically simplistic it is based on the interaction of the continuum phenomena and yields good comparisons with available experimental results. This work represents the first of the next generation of casting simulation tools to predict aspects of the structure of cast components.Keywords
This publication has 11 references indexed in Scilit:
- A natural extension of the conventional finite volume method into polygonal unstructured meshes for CFD applicationApplied Mathematical Modelling, 1996
- A finite volume procedure to solve elastic solid mechanics problems in three dimensions on an unstructured meshInternational Journal for Numerical Methods in Engineering, 1995
- An enthalpy control‐volume—unstructured‐mesh (cv—um) algorithm for solidification by conduction onlyInternational Journal for Numerical Methods in Engineering, 1992
- A control volume procedure for solving the elastic stress-strain equations on an unstructured meshApplied Mathematical Modelling, 1991
- ERAL SOURCE-BASED METHOD FOR SOLIDIFICATION PHASE CHANGENumerical Heat Transfer, Part B: Fundamentals, 1991
- Thermo-mechanical finite element model of casting systemsInternational Journal for Numerical Methods in Engineering, 1990
- Modelling of microstructure formation in solidification processesInternational Materials Reviews, 1989
- An elasto‐viscoplastic thermal stress model with applications to the continuous casting of metalsInternational Journal for Numerical Methods in Engineering, 1979
- A calculation procedure for heat, mass and momentum transfer in three-dimensional parabolic flowsInternational Journal of Heat and Mass Transfer, 1972
- Numerical solution of the quasilinear poisson equation in a nonuniform triangle meshJournal of Computational Physics, 1966