4.6 Article

Effects of interfacial residual stress on mechanical behavior of SiCf/SiC composites

Journal

JOURNAL OF ADVANCED CERAMICS
Volume 11, Issue 1, Pages 94-104

Publisher

SPRINGER
DOI: 10.1007/s40145-021-0519-5

Keywords

ceramic matrix composites; Raman spectroscopy; mechanical properties; residual stress

Funding

  1. National Natural Science Foundation of China [51902328]
  2. Science and Technology Commission of Shanghai Municipality [19ZR1464700]
  3. Innovation Academy for Light-duty Gas Turbine, CAS [CXYJJ20-QN-09]
  4. Chinese Academy of Sciences [QYZDY-SSW-JSC031]
  5. Key Deployment Projects of the Chinese Academy of Sciences [ZDRW-CN-2019-01]

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Residual stress in boron nitride interphase of continuous SiC fiber-reinforced SiC composites was measured, and it was found that an increase in fabrication temperature leads to increased residual stress, which significantly affects the mechanical properties of the composites.
Layer-structured interphase, existing between reinforcing fiber and ceramics matrix, is an indispensable constituent for fiber-reinforced ceramic composites due to its determinant role in the mechanical behavior of the composites. However, the interphase may suffer high residual stress because of the mismatch of thermal expansion coefficients in the constituents, and this can exert significant influence on the mechanical behavior of the composites. Here, the residual stress in the boron nitride (BN) interphase of continuous SiC fiber-reinforced SiC composites was measured using a micro-Raman spectrometer. The effects of the residual stress on the mechanical behavior of the composites were investigated by correlating the residual stress with the mechanical properties of the composites. The results indicate that the residual stress increases from 26.5 to 82.6 MPa in tension as the fabrication temperature of the composites rises from 1500 to 1650 degrees C. Moreover, the increasing tensile residual stress leads to significant variation of tensile strain, tensile strength, and fiber/matrix debonding mode of the composites. The sublayer slipping of the interphase caused by the residual stress should be responsible for the transformation of the mechanical behavior. This work can offer important guidance for residual stress adjustment in fiber-reinforced ceramic composites.

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