1.Key Laboratory of Electromagnetic Processing of Materials,Ministry of Education,Northeastern University,Shenyang 110819,China 2.School of Materials Science & Engineering,Northeastern University,Shenyang 110819,China.
Table 1 Actual compositions of AZ31B magnesium alloy (mass fraction)
Al
Zn
Mn
Si
Fe
Cu
Ni
Mg
3.12
0.88
0.28
0.1
0.003
0.003
0.005
余量
Fig.2 Metallographic structure of homogenized AZ31B experimental slab
Fig.2 Metallographic structure of homogenized AZ31B experimental slab
Fig.3 Thermocouple position distribution and flow chart of slab temperature measurement experiment
Fig.3 Thermocouple position distribution and flow chart of slab temperature measurement experiment
Fig.4 Diagram of heat exchange during rolling of AZ31B magnesium alloy sheets and characteristic value of deformation heat corresponding to measured curves
Fig.4 Diagram of heat exchange during rolling of AZ31B magnesium alloy sheets and characteristic value of deformation heat corresponding to measured curves
Fig.5 Temperature-time variation curves of AZ31B magnesium alloy sheets with different thicknesses at different rolling temperatures
Fig.5 Temperature-time variation curves of AZ31B magnesium alloy sheets with different thicknesses at different rolling temperatures
Fig.6 Microstructures at different positions along thickness direction under initial rolling temperature of 200 °C and rolling reduction ratio of 15%
Fig.6 Microstructures at different positions along thickness direction under initial rolling temperature of 200 °C and rolling reduction ratio of 15%
Fig.7 Temperature-time variation curves of AZ31B magnesium alloy sheets with different thicknesses at different rolling reduction ratios
Fig.7 Temperature-time variation curves of AZ31B magnesium alloy sheets with different thicknesses at different rolling reduction ratios
Fig.8 Microstructures at different positions along thickness direction under initial rolling temperature of 250 °C and rolling reduction ratio of 17%
Fig.8 Microstructures at different positions along thickness direction under initial rolling temperature of 250 °C and rolling reduction ratio of 17%
Fig.9 Variation of ∆t1 and ∆t2 of AZ31B magnesium alloy sheets at different rolling reduction ratios and temperatures
Fig.9 Variation of ∆t1 and ∆t2 of AZ31B magnesium alloy sheets at different rolling reduction ratios and temperatures
Fig.10 Comparison between calculated curves by empirical formula and measured values
Fig.10 Comparison between calculated curves by empirical formula and measured values
Fig.11 Measured data and predicted curves of AZ31B magnesium alloy sheets
Fig.11 Measured data and predicted curves of AZ31B magnesium alloy sheets
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