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Effect of Different Pressures on Microstructure and Mechanical Performance of F-III Fibers in Supercritical Carbon Dioxide Fluid

机译:不同压力对超临界二氧化碳流体中F-III纤维微结构和力学性能的影响

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摘要

F-III fibers were treated at different pressures in supercritical carbon dioxide fluid and all samples including untreated and treated F-III fibers were characterized by a mechanical performance tester, wide-angle X-ray scattering and small-angle X-ray scattering. By studying the relationship between mechanical performance and microstructural changes of the samples, it was found that microstructural change was the main cause of variation in mechanical performance. Results revealed that the maximum tensile strength and modulus of F-III fibers were acquired at 14 MPa within the pressure range of 8 MPa to 16 MPa when the temperature, tension and time were 250 °C, 6 g·d−1 and 40 min, respectively. Correspondingly, the microstructures of the samples, including the phase fraction, crystal size, orientation factor, fibril radius, fibril length and misorientation angle, have been investigated. It was fortunate that the supercritical carbon dioxide fluid could be used as a medium during the hot-stretch process to improve the mechanical performance of F-III fibers, although the treatment temperature was lower than the glass transition temperature of the F-III fibers.
机译:F-III纤维在超临界二氧化碳流体中以不同的压力进行处理,所有样品(包括未处理和处理的F-III纤维)均通过机械性能测试仪,广角X射线散射和小角X射线散射进行表征。通过研究样品的机械性能和微观结构变化之间的关系,发现微观结构变化是机械性能变化的主要原因。结果显示,当温度,张力和时间为250°C,6 g·d sup -1时,在8 MPa至16 MPa的压力范围内,在14 MPa下获得F-III纤维的最大拉伸强度和模量。 和40分钟。相应地,研究了样品的微观结构,包括相分数,晶体尺寸,取向因子,原纤维半径,原纤维长度和取向差角。幸运的是,尽管处理温度低于F-III纤维的玻璃化转变温度,但超临界二氧化碳流体仍可以在热拉伸过程中用作介质,以改善F-III纤维的机械性能。

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