TY - JOUR
T1 - The effect of processing parameters on the temperature distribution and interface shape in Czochralski growth of Al2O3/YAG eutectic ceramic composite
T2 - Modeling and experiment
AU - Liu, Yuan
AU - Su, Haijun
AU - Tan, Xue
AU - Shen, Zhonglin
AU - Li, Xiang
AU - Jiang, Hao
AU - Yu, Minghui
AU - Guo, Yinuo
AU - Zhang, Zhuo
AU - Guo, Min
N1 - Publisher Copyright:
© 2025 Elsevier Ltd and Techna Group S.r.l.
PY - 2025
Y1 - 2025
N2 - The temperature distribution and solid-liquid interface shape during crystal growth are critical for manufacturing high-quality bulk crystalline materials. However, as a kind of outstanding high-temperature structural material, the two phases of Al2O3/YAG eutectic ceramic composite still face the thermoelastic mismatch issue, and the process window is narrower compared to that of single crystal materials. In this study, numerical simulations and experiments were used to determine the effects of pulling rate, crystal rotation speed, crystal diameter, and insulation system configuration on the temperature and flow fields during Czochralski directional solidification of the Al2O3/YAG eutectic ceramic composites. The computational simulations show good agreement with the experimental results for as-grown Al2O3/YAG eutectic ceramic composite. By synergistically controlling the growth parameters, such as keeping the pulling rate ≤1.5 mm/h, the rotation speed ≤10 r/min, the diameter ≤30 mm, and using a ZrO2 insulation barrel with a 25 mm thickness combined with 7 mm thick insulation cotton, a stable interface morphology with an equilibrious melt convection and a slightly convex solid-liquid interface could be achieved. Ultimately, all above research results guide the efficient production of large, crack-free, highly oriented Al2O3/YAG eutectic ceramic composites (Φ30 mm × 100 mm).
AB - The temperature distribution and solid-liquid interface shape during crystal growth are critical for manufacturing high-quality bulk crystalline materials. However, as a kind of outstanding high-temperature structural material, the two phases of Al2O3/YAG eutectic ceramic composite still face the thermoelastic mismatch issue, and the process window is narrower compared to that of single crystal materials. In this study, numerical simulations and experiments were used to determine the effects of pulling rate, crystal rotation speed, crystal diameter, and insulation system configuration on the temperature and flow fields during Czochralski directional solidification of the Al2O3/YAG eutectic ceramic composites. The computational simulations show good agreement with the experimental results for as-grown Al2O3/YAG eutectic ceramic composite. By synergistically controlling the growth parameters, such as keeping the pulling rate ≤1.5 mm/h, the rotation speed ≤10 r/min, the diameter ≤30 mm, and using a ZrO2 insulation barrel with a 25 mm thickness combined with 7 mm thick insulation cotton, a stable interface morphology with an equilibrious melt convection and a slightly convex solid-liquid interface could be achieved. Ultimately, all above research results guide the efficient production of large, crack-free, highly oriented Al2O3/YAG eutectic ceramic composites (Φ30 mm × 100 mm).
KW - AlO/YAG eutectic ceramic composite
KW - Czochralski method
KW - Experimental verification
KW - Numerical modeling
KW - Solid/liquid interface
UR - http://www.scopus.com/inward/record.url?scp=105007288765&partnerID=8YFLogxK
U2 - 10.1016/j.ceramint.2025.05.357
DO - 10.1016/j.ceramint.2025.05.357
M3 - 文章
AN - SCOPUS:105007288765
SN - 0272-8842
JO - Ceramics International
JF - Ceramics International
ER -