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Inelastic behavior and numerical analysis in twin-roll casting process of AZ31 alloy

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Warianty tytułu
Konferencja
Solid Mechanics Conference (36 ; 9-12.09.2008 ; Gdańsk, Poland)
Języki publikacji
EN
Abstrakty
EN
In this paper, Anand's model, a uni?ed visco-plasticity constitutive model, was employed to simulate the highly nonlinear behavior in the twin-roll casting process. Anand model's parameters were regressed based on compression tests at various temperatures and strain rates for magnesium alloy AZ31. To calculate the thermal mechanical stresses, the thermal ?ow of twin-roll casting process was simulated ?rstly; then the stresses were calculated by the imposed thermal ?ow as the body load, and a small displacement load along roller's tangential direction was imposed simultaneously in order to simulate the rolling action. The stresses and deformation results were compared with experimental data. Based on the stresses analysis and experimental tests, it reveals that separating force should be strictly controlled in the twin roll casting process in order to avoid cracks caused by thermal and deformation stresses.
Rocznik
Strony
229--239
Opis fizyczny
Bibliogr. 15 poz.
Twórcy
autor
autor
autor
Bibliografia
  • 1. D.Y. Ju, H.Y. ZHAO, X.D. Hu, Thermal Flow Simulation on Twin Roll Casting Process for Thin Strip Production of Magnesium Alloy, Mater. Sci. Forum, 488-489, 439, 2005.
  • 2. O. DAALAND, A.B. ESPEDAL, M.L. NEDREBERG, I. ALVESTAD, Thin Gauge Twin-roll Casting Process Capabilities and Product Quality, Light Metals, 745, 1997.
  • 3. R.I.L. GUTHRIE, R.P. TAVARES, Mathematical and Physical Modeling of Steel Flow and Solidification in Twin-roll/Horizontal Belt Thin-strip Casting Machines, Applied Mathematics Modelling, 22, 851, 1998.
  • 4. M. GUPTA, Y. SAHAI, Mathematical Modeling of Thermally Induced Stresses in Two-roll Melt Drag Thin Strip Casting of Steel, ISIJ International, 40, No. 2, 144-152, 2000.
  • 5. Y. SAHAI, A. SAXENA, Modeling of Twin-roll Thin Strip Casting of Aluminum Alloys, Light Metals, TMS, 643-650, 2002.
  • 6. E.G. THOMAS, Issues in Thermal-mechanical Modeling of Casting Processes, ISIJ International, 35, No. 6, 737-743, 1995.
  • 7. S.B. BROWN, K.H. KIM, L. ANAND, An Internal Variable Constitutive Mdel for Hot Working of Metals, International Journal of Plasticity, 5, 95-130, 1989.
  • 8. A.M. LUSH, G. WEBER, L. ANAND, An implicit time-integration procedure for a set of internal variable constitutive equatuions for isotropic elasto-viscoplasticity, International Journal of Plasticity, 5, 521-549, 1989.
  • 9. G.G. WEBER, A.M. LUSH, A. ZAVALIANGOS, L. ANAND, An objective time-integration procedure for isotropic rate-independent and rate-dependent elastic-plastic constitutive equations, International Journal of Plasticity, 6, 701-744, 1990.
  • 10. C. Xu, G. CHEN, M. SAKANE, Modified Anand Constitutive Model for Lead-free Solder Sn-3.5Ag, Inter. Society Conference on Thermal Phenomena, 447-452, 2004.
  • 11. J, KOIKE, Dislocation Plasticity and Complementary Deformation Mechanisms in Poly-cry stall'ine Mg Alloys, Materials Science Forum, 449-452, 665-669, 2004,
  • 12. K, MlNAML et a,l,, Mathematical Modeling of Mean Flow Stress during the Hot Strip Rolling of Nb Steels, ISIJ International, 36, 1507-1515, 1996.
  • 13. G.F, QUAN, Yield and Plastic Deformation of Mg-Alloy AZ31 at Elevated Temperatures, Materials Science Forum 488-489, 623-628, 2005.
  • 14. B.H. LEE et a/., High Temperature Deformation Behavior of Strip-Cast AZ31 Mg Alloy, Advanced Materials Research, 15-17, 461-466, 2007.
  • 15. M. NODAL et a/., Biaxial Tensile Deformation Behavior and Micro structural Evolutions of Superplasticity in AZ31 Magnesium Alloy, Materials Science Forum, 551-552, 225-230, 2007.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BAT7-0016-0035
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