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首页> 外文期刊>Acta Metallurgica et Materialia >EFFECTS OF TEMPERATURE, RATE, AND CYCLIC LOADING ON THE STRENGTH AND TOUGHNESS OF MONOLITHIC CERAMICS
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EFFECTS OF TEMPERATURE, RATE, AND CYCLIC LOADING ON THE STRENGTH AND TOUGHNESS OF MONOLITHIC CERAMICS

机译:温度,速率和循环载荷对单晶陶瓷强度和韧性的影响

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摘要

The concept of grain bridging and pullout is applied to monolithic ceramics to understand the effects of temperature, displacement rate, and load cycling on crack wake shielding. At low temperature, the pullout of completely debonded grains accounts for all the toughening. The importance of this process diminishes with temperature. This is because of the more uniform stress distribution along the crack plane and the softening of grain boundary glassy phases, both of which tend to reduce the incidence of complete grain boundary decohesion. At sufficiently high temperature, however, the softening of grain boundary phases may allow the sliding zone to extend to the grain's end, increasing the incidence of intergranular fracture. This "high temperature" pullout triggers a sudden increase in toughness. Our pullout model successfully explains the high temperature peak and the dependence of peak position on displacement rate in fracture toughness and strength observations for some monolithic and whisker-reinforced ceramics. Degradation of interfacial friction, as by cyclic loading, is seen to decrease the frictional work for low temperature pullout but increases the frictional work for high temperature pullout. Thus, this model also provides a rationale for the opposite effect of stress cycling on crack resistance at low and high temperatures reported recently for ceramics.
机译:晶粒桥接和拉拔的概念适用于整体式陶瓷,以了解温度,位移速率和载荷循环对裂纹唤醒屏蔽的影响。在低温下,完全脱粘的晶粒的拔出是所有增韧的原因。该过程的重要性随温度而降低。这是由于沿裂纹面的应力分布更加均匀以及晶界玻璃态相的软化,这两者都倾向于减少晶界完全脱粘的发生。然而,在足够高的温度下,晶界相的软化可能会使滑动区延伸到晶的末端,从而增加晶间断裂的发生率。这种“高温”拉拔会导致韧性突然增加。我们的拉拔模型成功地解释了某些整体式和晶须增强陶瓷的高温峰值以及峰值位置对位移速率的依赖关系,其断裂韧性和强度观察结果均如此。界面摩擦的退化,如循环载荷,可以降低低温拔出时的摩擦功,但增加高温拔出时的摩擦功。因此,该模型还为最近报道的陶瓷在低温和高温下应力循环对抗裂性的相反影响提供了理论依据。

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