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Evolution of Mechanical Properties During Cure for Out-of-Autoclave Carbon-Epoxy Prepregs

机译:高压釜内碳环氧预浸料固化过程中力学性能的演变

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Extent of cure and rheological properties were obtained for out-of-autoclave materials, Cycom 5320-8HS and Cycom 5320-PW, for the manufacturer recommended cure cycle using differential scanning calorimeter and encapsulated sample rheometer (ESR), respectively. Rheological properties from ESR were further used in designing the cure cycles to study the evolution of mechanical properties. Five panels were cured at different cure stages using the designed cure cycles and coupons were tested for short beam shear and combined loading compression properties at different cure stages. To correlate the mechanical properties with its respective glass transition temperature, dynamic mechanical analyzer was used to obtain the glass transition temperature for the coupons obtained from the respective panels. Statistical results showed significant difference in short beam shear and combined loading compression properties up to vitrification, however, no significant difference was observed on these mechanical properties after vitrification. The observed linear trend between degree of cure (DOC) and glass transition temperature (T-g) was validated using DiBenedetto relation. Linearly increasing trend between DOC and glass transition temperature (T-g) for different cure states suggests that both DOC and T-g can be used interchangeably to define the state of material. A good correlation was observed between material cure state and the mechanical properties. A mathematical model was also proposed to determine the short beam shear and combined loading compression properties based on material cure state. (c) 2014 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2015, 132, 41548.
机译:对于超高压灭菌材料Cycom 5320-8HS和Cycom 5320-PW,分别使用差示扫描量热仪和封装样品流变仪(ESR)获得了制造商建议的固化周期,从而获得了一定程度的固化和流变性能。 ESR的流变性质进一步用于设计固化周期,以研究机械性质的演变。使用设计的固化周期在不同的固化阶段固化五块面板,并在不同的固化阶段测试样板的短梁剪切力和组合载荷压缩性能。为了使机械性能与其各自的玻璃化转变温度相关联,使用动态机械分析仪来获得从各个面板获得的试样的玻璃化转变温度。统计结果表明,直到玻璃化为止,短梁剪切和组合载荷压缩特性存在显着差异,但是在玻璃化之后,这些机械性能没有发现显着差异。使用DiBenedetto关系验证了观察到的固化度(DOC)和玻璃化转变温度(T-g)之间的线性趋势。对于不同的固化状态,DOC和玻璃化转变温度(T-g)之间线性增加的趋势表明DOC和T-g可以互换使用来定义材料的状态。在材料固化状态和机械性能之间观察到良好的相关性。还提出了基于材料固化状态确定短梁剪切和组合载荷压缩特性的数学模型。 (c)2014 Wiley Periodicals,Inc. J. Appl。 Polym。科学2015,132,41548。

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