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首页> 外文期刊>Metallurgical and materials transactions. A, physical metallurgy and materials science >Effective Elastic Moduli of Fiber-Matrix Interphases in High-Temperature Composites
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Effective Elastic Moduli of Fiber-Matrix Interphases in High-Temperature Composites

机译:高温复合材料中纤维基质相的有效弹性模量

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This article describes a theoretical model and an experimental method for determination of inter-phasial elastic moduli in high-temperature composites. The interphasial moduli are calculated from the ultrasonically measured composite moduli via inversion of multiphase micromechanical models. Explicit equations are obtained for determination of interphasial stiffnesses for an interphase model with spring boundary conditions and multiphase fiber. The results are compared with the exact multiphase representation. The method was applied to ceramic and intermetallic matrix composites reinforced with SiC SCS-6 fibers. In both composites, the fiber-matrix interphases include approximately 3-μm-thick carbon-rich coatings on the outer surface of the SiC shell. Although the same fiber is used in both composite systems, experimental results indicate that the effective interphasial moduli in these two composite systems are very different. The interphasial moduli in intermetallic matrix composites are much greater than those in ceramic matrix composites. After taking the interphase microstructure into account, we found that the interphasial moduli measured for the intermetallic matrix composites are very close to the estimated bulk moduli of the pyrolytic carbon with SiC particle inclusions. Our analysis shows that the lower effective interphasial moduli in the reaction-bonded Si_3N_4 (RBSN) ceramic matrix composites are due to imperfect contact between the interphasial carbon and the porous matrix and to thermal tension forces which slightly unclamp the interphase. Thus, measured interphase effective moduli give information on the quality of mechanical contact between fiber and matrix. Possible errors in the interphasial moduli determined are analyzed and the results show that these errors are below 10 pct. In addition, the use of the measured interphasial moduli for assessment of interphasial damage and interphase reactions is discussed.
机译:本文介绍了测定高温复合材料相间弹性模量的理论模型和实验方法。通过多相微机械模型的反演,由超声测量的复合模量计算相间模量。获得用于确定具有弹簧边界条件和多相纤维的相间模型的相间刚度的显式方程。将结果与精确的多相表示进行比较。该方法适用于SiC SCS-6纤维增强的陶瓷和金属间化合物基复合材料。在这两种复合材料中,纤维-基体中间相在SiC外壳的外表面上都包含大约3-μm厚的富碳涂层。尽管两个复合系统都使用相同的纤维,但实验结果表明,这两个复合系统中的有效相间模量有很大不同。金属间基复合材料中的相间模量比陶瓷基复合材料中的相模大得多。考虑到相间的微观结构后,我们发现金属间基复合材料的相变模量非常接近于估计的含SiC颗粒的热解碳的体模量。我们的分析表明,反应键合的Si_3N_4(RBSN)陶瓷基复合材料中较低的有效相间模量是由于相间碳与多孔基体之间的接触不良以及由于热张力略微松开了相间。因此,测得的相间有效模量可提供有关纤维与基体之间机械接触质量的信息。分析了确定的相间模量的可能误差,结果表明这些误差低于10 pct。另外,还讨论了使用测得的相间模量评估相间损伤和相间反应。

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