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Fracture Mechanics Analyses of Subsurface Defects in Reinforced Carbon-Carbon Joggles Subjected to Thermo-Mechanical Loads

机译:受热机械载荷作用的增强碳-碳薄板的表面缺陷的断裂力学分析

摘要

Coating spallation events have been observed along the slip-side joggle region of the Space Shuttle Orbiter wing-leading-edge panels. One potential contributor to the spallation event is a pressure build up within subsurface voids or defects due to volatiles or water vapor entrapped during fabrication, refurbishment, or normal operational use. The influence of entrapped pressure on the thermo-mechanical fracture-mechanics response of reinforced carbon-carbon with subsurface defects is studied. Plane-strain simulations with embedded subsurface defects are performed to characterize the fracture mechanics response for a given defect length when subjected to combined elevated-temperature and subsurface-defect pressure loadings to simulate the unvented defect condition. Various subsurface defect locations of a fixed-length substrate defect are examined for elevated temperature conditions. Fracture mechanics results suggest that entrapped pressure combined with local elevated temperatures have the potential to cause subsurface defect growth and possibly contribute to further material separation or even spallation. For this anomaly to occur, several unusual circumstances would be required making such an outcome unlikely but plausible.
机译:在航天飞机轨道飞行器机翼前缘板的滑移侧缓动区观察到了涂层剥落事件。造成散裂事件的一个潜在原因是由于在制造,翻新或正常使用过程中夹带的挥发物或水蒸气而在地下空隙或缺陷内形成压力。研究了夹带压力对具有地下缺陷的增强碳-碳热机械断裂力学响应的影响。进行了带有嵌入式地下缺陷的平面应变模拟,以表征给定缺陷长度在组合的高温和地下缺陷压力载荷共同作用下模拟未通风缺陷状态时的断裂力学响应。在高温条件下,检查了固定长度基板缺陷的各种次表面缺陷位置。断裂力学结果表明,夹杂的压力加上局部升高的温度有可能引起地下缺陷的生长,并可能进一步导致材料分离甚至剥落。为了使这种异常发生,可能需要几种不同的情况,以使这种结果不太可能出现,但似乎是合理的。

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