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Effects of temperature and atmosphere on microstructural evolution and mechanical properties of KD-II SiC fibers

机译:温度和气氛对KD-II SiC纤维的微观结构演化和力学性能的影响

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KD-II SiC fibers were heat treated from 800 degrees C to 1500 degrees C in argon and air atmospheres to comparatively analyze the effect of temperature and applied atmosphere on the microstructural evolution and mechanical behaviors of the fibers. The results show that sizes of the beta-SiC grains, free carbon clusters, and micropores increase in both atmospheres as the temperature rises. Consequently, the strength of SiC fibers, in general, decreases with the increase in heat treatment temperature. However, SiC fibers responded differently during heat treatment at various temperatures in air compared to argon. The passive oxidation in air could cause more defects in the fibers. At 1200 degrees C, a lot of oxidation products were formed on the surface of the fibers; at 1400 degrees C, cracks appeared on the oxidation (silica) scale; and at 1500 degrees C, spallation of the oxide occurred. The cracking and spallation of the surface oxide may stem from the internal stress produced at the interface between the oxide scale and the unoxidized SiC core, which caused an earlier fiber failure in the air environment. As a result, the fiber strength treated in the air was lower than that treated in argon when the temperature was above 1200 degrees C.
机译:KD-II SIC纤维在氩气和空气环境中从800℃至1500摄氏度热处理,以相互分析温度和应用气氛对纤维的微观结构演化和机械行为的影响。结果表明,随着温度升高,β-SiC谷物,游离碳簇和微孔的尺寸增加。因此,SiC纤维的强度通常随着热处理温度的增加而降低。然而,与氩气相比,SiC纤维在空气中的各种温度下的热处理过程中响应不同。空气中的被动氧化可能导致纤维中的更多缺陷。在1200℃下,在纤维的表面上形成大量氧化产物;在1400℃下,氧化(二氧化硅)尺度上出现裂缝;并且在1500℃下,发生氧化物的椎间露。表面氧化物的裂缝和剥落可以源于在氧化物秤和未氧化的SiC芯之间产生的内应力,这导致空气环境中的早期纤维失效。结果,当温度高于1200℃时,在空气中处理的纤维强度低于氩气中处理的纤维强度。

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