通过测量聚碳酸酯-碳纤维复合材料的瞬态流变模拟取向形态

IF 2.2 4区 工程技术 Q2 MECHANICS
Javad Rahmannezhad, Hyeon Dam Jeong, Seung Chan Ryu, Heon Sang Lee
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引用次数: 0

摘要

采用同向双螺杆挤出和注射成型的方法制备了碳纤维增强聚碳酸酯(CFR-PC)。利用8mm圆盘旋转流变仪对实测的瞬态应力曲线进行反计算,模拟了CFR-PC的取向形态。剪切应力演化用第一类Fredholm积分的函数表示;总应力由各取向状态下的应力的线性组合表示。我们采用扩展的White-Metzner模型和Dinh-Armstrong流动-纤维耦合项作为本构方程来评估各取向状态下的应力。根据实测应力超调量,采用吉洪诺夫正则化方法确定各取向状态的概率密度。最后,根据确定的取向态概率密度,采用最大熵法确定CFR-PC的取向分布函数。对于CFR-PCs, ODF模拟的形貌与光学显微镜得到的形貌吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Simulated orientational morphology from the measured transient rheology of polycarbonate–carbon fiber composites

Simulated orientational morphology from the measured transient rheology of polycarbonate–carbon fiber composites

We prepared carbon fiber (CF) reinforced polycarbonates (CFR-PC) by co-rotating twin screw extruder and injection molding. We simulated the orientational morphology of CFR-PC by inverse calculation from the measured transient stress curve using 8 mm disk rotational rheometer. The shear stress evolution was expressed by a function of the Fredholm integral of the first kind; total stress was expressed by a linear combination contributed from a stress at each orientation state. We employed an extended White–Metzner model with Dinh–Armstrong flow-fiber coupling term as a constitutive equation for the evaluation of stress at each orientation state. The probability density of each orientation state was determined by the Tikhonov regularization method from the measured stress overshoot. Finally, the orientation distribution functions (ODFs) of CFR-PC were determined by maximum entropy method from the determined probability density of orientation state. For the CFR-PCs, the simulated morphology by the ODF was well consistent with the morphology obtained by optical microscopy.

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来源期刊
Korea-Australia Rheology Journal
Korea-Australia Rheology Journal 工程技术-高分子科学
CiteScore
2.80
自引率
0.00%
发文量
28
审稿时长
>12 weeks
期刊介绍: The Korea-Australia Rheology Journal is devoted to fundamental and applied research with immediate or potential value in rheology, covering the science of the deformation and flow of materials. Emphases are placed on experimental and numerical advances in the areas of complex fluids. The journal offers insight into characterization and understanding of technologically important materials with a wide range of practical applications.
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