材料科学
抗弯强度
蠕动
烧结
复合材料
陶瓷
热膨胀
大气温度范围
收缩率
高温合金
涡轮叶片
微观结构
涡轮机
机械工程
工程类
气象学
物理
作者
Zhiping Pan,Jianzheng Guo,Shuangming Li,Jiangying Xiong,Anping Long
标识
DOI:10.1016/j.ceramint.2021.09.132
摘要
Silica-based ceramic cores are widely utilized for shaping the internal cooling canals of single crystal superalloy turbine blades. The thermal expansion behavior, creep resistance, and high temperature flexural strength are critical for the quality of turbine blades. In this study, the influence of zircon, particle size distribution, and sintering temperature on the high-temperature performance of silica-based ceramic cores were investigated. The results show that zircon is beneficial for narrowing the contraction temperature range and reducing the shrinkage, improving the creep resistance and high-temperature flexural strength significantly. Mixing coarse, medium and fine fused silica powders in a ratio of 5:3:2, not only reduced high temperature contraction, but effectively improved the creep resistance. Properly increasing the sintering temperature can slightly reduce the thermal deformation and improve the high-temperature flexural strength of the silica-based core, but excessively high sintering temperature negatively impacts the creep resistance and high-temperature flexural strength.
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