Prediction of grain size for large-sized aluminium alloy 7050 forging during hot forming

You-ping Yi , Xin Fu , Jin-dong Cui , Hua Chen

Journal of Central South University ›› 2008, Vol. 15 ›› Issue (1) : 1 -5.

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Journal of Central South University ›› 2008, Vol. 15 ›› Issue (1) : 1 -5. DOI: 10.1007/s11771-008-0001-3
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Prediction of grain size for large-sized aluminium alloy 7050 forging during hot forming

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Abstract

A numerical approach for process optimization and microstructure evolution of lager-sized forging of aluminium alloy 7050 was proposed, which combined a commercial FEM code Deform 3D with empirical models. To obtain the parameters of empirical constitutive equation and dynamic recrystallization models for aluminium alloy 7050, the isothermal compression tests of 7050 samples were performed on Gleeble-1500 thermo-simulation machine in the temperature range of 250–450 °C and strain rate of 0.01–10 s−1, and the metallograph analysis of the samples were carried out on a Leica DMIRM image analyzer. The simulation results show that the dynamic recrystallization in the central area of the billet occurs more easily than that on the edge. Repetitious upsetting and stretching processes make the billet deform adequately. Among several forging processes e.g. upsetting, stretching, rounding and flatting, the stretching process is the most effective way to increase the effective strain and refine the microstructure of the billet. As the forging steps increase, the effective strain rises significantly and the average grain size reduces sharply. Recrystallized volume fractions in most parts of the final forging piece reach 100% and the average grain size reduces to 10 μm from initial value of 90 μm.

Keywords

aluminium alloy 7050 / grain size / forging / FEM simulation

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You-ping Yi, Xin Fu, Jin-dong Cui, Hua Chen. Prediction of grain size for large-sized aluminium alloy 7050 forging during hot forming. Journal of Central South University, 2008, 15(1): 1-5 DOI:10.1007/s11771-008-0001-3

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References

[1]

PoeltP., SommitschC., MitscheS.. Dynamic recrystallization of Ni-base alloys — Experimental results and comparisons with simulations[J]. Materials Science and Engineering A, 2006, 420(1/2): 306-314

[2]

SenumaT., SuehiroM., YadaH.. Mathematical models for predicting microstructure evolution and mechanical properties of strips[J]. ISIJ International, 1992, 32(3): 423-432

[3]

ZhangH., PengD.-s., YangL.-b., MengL.-ping.. Recrystallization model for hot-rolling of 5182 aluminium alloy[J]. Trans Nonferrous Met Soc China, 2001, 11(3): 382-386

[4]

FengC., LiuZ.-y., NingA.-l., ZengS.-min.. Effect of low temperature aging on microstructure and mechanical properties of super-high strength aluminum alloy[J]. Journal of Central South University of Technology, 2006, 13(5): 461-467

[5]

DingR., GuoZ. X.. Microstructural modeling of dynamic recrystallization using an extended cellular automation approach[J]. Computational Materials Science, 2002, 23(1/4): 209-218

[6]

HartleyP., PillingerI.. Numerical simulation of the forging process[J]. Computer Methods in Applied Mechanics and Engineering, 2006, 195(48/49): 6676-6690

[7]

SatioY.. Modelling of microstructure evolution in thermomechanical processing of structural steels[J]. Materials Science and Engineering A, 1997, 223(1/2): 134-145

[8]

JangY., KoD., KimB.. Application of the finite element method to predict microstructure evolution in the hot forging of steel[J]. Journal of Materials Processing Technology, 2000, 101(1/3): 85-94

[9]

LuceR., WolskeM., RotersF., GottsteinG.. Application of a dislocation model for FE-process simulation[J]. Computational Materials Science, 2001, 21(1): 1-8

[10]

ZhangJ.-h., HuangB.-y., HeY.-h., ZhouK.-c., MengL.-ping.. Physical simulation of hot deformation of TiAl based alloy[J]. Journal of Central South University of Technology, 2002, 9(2): 73-76

[11]

LinQ.-q., PengD.-s., ZhangH., LinG.-yong.. Dynamic and static softening behaviours of 2519 aluminium alloy during multi-stage hot compression deformation[J]. Journal of Central South University: Science and Technology, 2005, 36(2): 183-187

[12]

SellarsC. M., WhitemanJ. A.. Recrystallization and grain growth in hot rolling[J]. Materials Science, 1979, 13(3): 187-194

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