COMPUTER MODELLING OF MICROSTRUCTURE DEVELOPMENT DURING MULTISTAGE DEFORMATION

Authors

  • Jarosław Nowak Faculty of Metals Engineering and Industrial Computer Science, AGH University of Science and Technology, Krakow, Poland,
  • Łukasz Rauch Faculty of Metals Engineering and Industrial Computer Science, AGH University of Science and Technology, Krakow, Poland,

DOI:

https://doi.org/10.7494/mafe.2006.32.2.99

Keywords:

Finite Element Method, microstructural development, forging

Abstract

The objective of this paper is implementation of microstructure development equations and their inclusion in commercial finite element code of Forge2 software. The created module is used for prediction of microstructure evolution in hot metal forming process. Calculations were carried out based on multistage forging process. Inclusion of the structural model into the Finite Element Method (FEM) source codes creates possibilities to take into account microstructural features already at the designing stage of the final industrial process.

Downloads

Download data is not yet available.

References

Pietrzyk M.: Finite Element Based Model of Structure Development in the Hot Rolling Process. Steel Research, 61 (1990), p. 603

Chenot J.L., Bellet M.: The Viscoplastic Approach for the Finite-Element Modelling of Metal Forming Processes. In: Numerical modelling of Materiał Deformation Processes, (Eds) P. Hartley, I. Pilinger, C.E.N. Sturges, Springer-Verlag, London, 1992, p. 79

Sellars CM.: Proc. Symp. Mathematical Modelling of Hot Rolling of Steel, (Ed.) Yue S. Hamilton, 1990, p. 1

WasiunykP.: Kucie matrycowe. WNT, Warszawa, 1987

Chałupczak J., Thomas P: Modelowanie komputerowe procesu wyciskania odkuwki tulei z kołnierzem. Mechanika, 201 (2003), p. 49

Forge2-V3.0, Materials Data Base

Downloads

Published

2006-12-31

How to Cite

Nowak, J., & Rauch, Łukasz. (2006). COMPUTER MODELLING OF MICROSTRUCTURE DEVELOPMENT DURING MULTISTAGE DEFORMATION. Metallurgy and Foundry Engineering, 32(2), 99. https://doi.org/10.7494/mafe.2006.32.2.99

Issue

Section

Articles