Oxidation behavior and mechanism of SiBCN ceramics derived from liquid polymer precursor

被引:0
|
作者
Xu Y. [1 ]
Hu J. [1 ]
Chen Z. [1 ]
Shi Y. [1 ]
Tao M. [1 ]
Feng Z. [1 ]
机构
[1] Science and Technology on Advanced Functional Composites Laboratory, Aerospace Research Institute of Materials & Processing Technology, Beijing
关键词
Kinetics; Microstructure; Oxidation; Phase; SiBCN ceramic;
D O I
10.13801/j.cnki.fhclxb.20180827.001
中图分类号
学科分类号
摘要
SiBCN ceramic shows excellent thermal stability, oxidation resistance and crystallization resistance. The oxidation behavior of SiBCN ceramics, derived from pyrolysis of polymeric precursor, was studied at 1 200℃ and 1 400℃ in air atmosphere. XPS was used to characterize the chemical bonding of SiBCN ceramic before and after oxidation experiments. XRD and SEM were employed to analyze the phase composition and microstructure of SiBCN ceramic before and after oxidation experiments. The oxidation kinetics was studied by measuring the thickness of oxide layers via SEM. The results show that, after oxidation experiments, dense protective oxide layers form on the surface of SiBCN ceramic to prevent further oxidation. And the diffusion of oxidant through the oxide layers is the rate-controlling process. The oxide layers thickness of SiBCN ceramic growth at 1 200 and 1 400℃ in air can be approximated by a parabolic rate law with rate constants of 0.0224 μm2/h and 0.1045 μm2/h, respectively. Which was thinner than SiC ceramic with rate constants of 0.0449 μm2/h and 0.1288 μm2/h, respectively. The BN(C) structure and the formed of dense SiOxNy layers made SiBCN ceramic have excellent oxidation resistance. © 2019, Editorial Office of Acta Materiae Compositae Sinica. All right reserved.
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页码:905 / 913
页数:8
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