TY - JOUR
T1 - α→β Sialon Transformation in Calcium-containing α -SiAlON Ceramics
AU - Mandal, Hasan
AU - Thompson, Derek P.
PY - 1999/5
Y1 - 1999/5
N2 - Recent studies on rare earth densified α-sialon ceramics have shown that the resulting α-sialon product, present either as a single phase or in conjunction with β-sialon, is unstable when heat treated at lower (1350-1600°C) temperatures, and transforms to a mixture of β-sialon plus other crystalline or liquid metal sialon phases. The present paper describes similar studies carried out on calcium-densified α-sialon compositions, and shows that for a wide range of starting compositions, with calcium as the sole sintering additive or present with other (Nd, Sr) cations, the resulting calcium stabilised a-sialon products are fully resistant towards α→β transformation when heat treated in the temperature range 1450-1550°C. Whereas α→β transformation in rare earth stabilised α-sialons is influenced by the nature of the rare earth cation, the α-sialon composition, the composition and melting behaviour of the liquid phase and the presence or absence of β-sialon nuclei, transformation in calcium a-sialons appears to be influenced by none of these parameters. Clearly if α→β sialon transformation occurs in this system, the transformation temperature for calcium α-sialons must be below 1450°C, the heat-treatment temperature which has been most frequently used in current research on rare earth densified α-sialons.
AB - Recent studies on rare earth densified α-sialon ceramics have shown that the resulting α-sialon product, present either as a single phase or in conjunction with β-sialon, is unstable when heat treated at lower (1350-1600°C) temperatures, and transforms to a mixture of β-sialon plus other crystalline or liquid metal sialon phases. The present paper describes similar studies carried out on calcium-densified α-sialon compositions, and shows that for a wide range of starting compositions, with calcium as the sole sintering additive or present with other (Nd, Sr) cations, the resulting calcium stabilised a-sialon products are fully resistant towards α→β transformation when heat treated in the temperature range 1450-1550°C. Whereas α→β transformation in rare earth stabilised α-sialons is influenced by the nature of the rare earth cation, the α-sialon composition, the composition and melting behaviour of the liquid phase and the presence or absence of β-sialon nuclei, transformation in calcium a-sialons appears to be influenced by none of these parameters. Clearly if α→β sialon transformation occurs in this system, the transformation temperature for calcium α-sialons must be below 1450°C, the heat-treatment temperature which has been most frequently used in current research on rare earth densified α-sialons.
KW - Alkaline earth oxides
KW - Electron microscopy.
KW - Microstructure - final
KW - Sialon
KW - Transformation
UR - http://www.scopus.com/inward/record.url?scp=0032651240&partnerID=8YFLogxK
U2 - 10.1016/s0955-2219(98)00251-9
DO - 10.1016/s0955-2219(98)00251-9
M3 - Article
AN - SCOPUS:0032651240
SN - 0955-2219
VL - 19
SP - 543
EP - 552
JO - Journal of the European Ceramic Society
JF - Journal of the European Ceramic Society
IS - 5
ER -