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通过浸渍法实现碳化硅陶瓷的微观结构演变与性能提升

Microstructure Evolution and Performance Improvement of Silicon Carbide Ceramics via Impregnation Method.

作者信息

Li Wei, Guo Conghui, Cui Congcong, Bao Jianxun, Zhang Ge, Zhang Yubei, Li Shan, Wang Gong

机构信息

Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China.

Key Laboratory of Optical System Advanced Manufacturing Technology, Chinese Academy of Sciences, Changchun 130033, China.

出版信息

Materials (Basel). 2022 Feb 24;15(5):1717. doi: 10.3390/ma15051717.

Abstract

The high topological silicon carbide (SiC) ceramics can be prepared by stereolithography (SLA) combined with liquid silicon infiltration (LSI) techniques. This paper aims to enhance the performance of SiC ceramics prepared by SLA and LSI techniques via the cyclic impregnation/carbonization of the precursor of carbon source solution before LSI. The effects of impregnation/carbonization cycles on the microstructure and properties of C/SiC preform and sintered body were analyzed in detail. The results show that, with the increase of impregnation/carbonization cycles, the porosity in the C/SiC preform decreases obviously and the content of secondary SiC in the sintered body increases effectively. Especially, when the impregnation/carbonization cycle was performed twice, the sintered body had the optimal mechanical properties. The value of flexural strength, bulk density and elastic modulus were 258.63 ± 8.33 MPa, 2.95 ± 0.02 g/cm and 425.16 ± 14.15 GPa, respectively. In addition, the thermal dimensional stability of sintered body was also improved by this method. This method proves that SiC ceramics prepared by SLA combined with LSI have the potential of applications in space optical mirrors.

摘要

高拓扑结构的碳化硅(SiC)陶瓷可通过立体光刻(SLA)结合液硅浸渗(LSI)技术制备。本文旨在通过在LSI之前对碳源溶液前驱体进行循环浸渍/碳化来提高采用SLA和LSI技术制备的SiC陶瓷的性能。详细分析了浸渍/碳化循环次数对C/SiC预制件和烧结体的微观结构及性能的影响。结果表明,随着浸渍/碳化循环次数的增加,C/SiC预制件中的孔隙率明显降低,烧结体中次生SiC的含量有效增加。特别是,当进行两次浸渍/碳化循环时,烧结体具有最佳的力学性能。抗弯强度、体积密度和弹性模量的值分别为258.63±8.33MPa、2.95±0.02g/cm³和425.16±14.15GPa。此外,该方法还提高了烧结体的热尺寸稳定性。该方法证明了采用SLA结合LSI制备的SiC陶瓷在空间光学镜方面具有应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/97da/8911186/877dbff6a7e4/materials-15-01717-g001.jpg

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