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Abstract
The densification mechanism during the park-plasma-sintering (SPS) processing was examined in high purity MgAl
2O
4 spinel. As the density ρ
t increases, that is, as the effective stress σ
eff decreases, stress exponent n evaluated from σ
eff dependence of densification rate varies from n ≥ 4 in the low ρ
t region, n ≈ 2 in the intermediate ρt region to n ≈ 1 in the high ρt region. TEM observation shows that significant stacking faults caused by partial dislocations are observed in the low ρ
t region, but limited in the high ρ
t region. The ρ
t dependent densification behavior and microstructure suggest that the predominant densification mechanism during the SPS processing changes with ρ
t from plastic flow by partial dislocation motion for the low ρ
t region (n ≥ 4) to diffusion-related creep for the high ρ
t region (n ≈ 1).