Experiments were conducted to determine the creep response of a thixoformed
Mg-Al-Zn AZ91 alloy in the temperature range between 120 and 180 degrees C
. The initial microstructure of the alloy consisted of large globular dendr
ites of alpha phase (solid solution of Al in Mg) surrounded by a divorced e
utectic of beta phase (Mg17Al12) and particles of alpha phase rich in Al. T
he minimum creep rate ((epsilon) over dot (m)) dependence on applied stress
sigma and temperature T was analysed in detail. The high stresses applied
in this study resulted in power law breakdown, leading to the use of the eq
uation (epsilon) over dot (m) proportional to [sinh(alpha(0)sigma)](n) exp(
- Q/RT) instead of the conventional power law. The stress exponent n was cl
ose to 5 with alpha(0) = 0.024 MPa-1. The activation energy for creep Q was
close to 140 kJ mol(-1). These results, and the comparison with creep data
obtained by testing the same material after solution treatment, led the au
thors to conclude that in the considered temperature regime. creep of the t
hixoformed AZ91 is controlled by high temperature climb of dislocations. (C
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