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首页> 外文期刊>Composite Structures >Crack growth behavior and thermal shock resistance of ceramic sandwich structures with an auxetic honeycomb core
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Crack growth behavior and thermal shock resistance of ceramic sandwich structures with an auxetic honeycomb core

机译:用扶手蜂窝芯的陶瓷夹层结构的裂纹生长行为和热抗冲击性

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摘要

This paper developed a thermal-mechanical analysis model to describe the thermal shock behavior of ceramic sandwich structures (CSSs) with an auxetic honeycomb core. The transient temperature distribution and the associated thermal stress field of CSSs subjected to a thermal shock were determined. The crack growth behavior was discussed based on the thermal stress intensity factor (TSIF), crack location, face-sheet thickness, and internal cell orientation of the honewycomb core in detail. The results revealed that the auxetic and nonauxetic honeycomb cores have the similar temperature distribution profile however the auxetic honeycomb core can substantially reduce the overall thermal stress level. Furthermore, by equating the maximum TSIF and equivalent fracture toughness, the critical temperature for which the honeycomb core can sustain without failure was obtained. The results showed that CSSs with auxetic honeycomb core possessed a higher thermal shock resistance than that of non-auxetic. This research work was the first attempt to identify the the thermal shock resistance of CSSs with an auxetic honeycomb core. The results would provide fresh insight into the design and selection of CSSs applied in an extreme temperature environments.
机译:本文开发了一种热机械分析模型,描述陶瓷夹层结构(CSSS)的热冲击行为,辅助蜂窝芯。确定经受热冲击的CSS的瞬态温度分布和相关的热应力场。基于Honewycomb核心的热应力强度因子(TSIF),裂缝位置,面板厚度和内部电池取向详细讨论了裂纹生长行为。结果表明,扶手和无曲蜂窝芯具有类似的温度分布曲线,但是辅助蜂窝芯可以大大降低总热应力水平。此外,通过等于最大TSIF和等效的断裂韧性,获得了蜂窝芯可以持续无故障的临界温度。结果表明,具有辅助蜂窝芯的CSSS具有比非静脉抑制更高的热抗冲击性。该研究工作是第一次尝试用扶手蜂窝核心识别CSSS的热抗震性。结果将对在极端温度环境中应用的CSSS的设计和选择提供新的洞察力。

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