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Influence of cure kinetic, rheological and thermo-mechanical behavior on micro-level curing strain of an epoxy prepreg

机译:固化动力学,流变学和热机械行为对环氧预浸料微观固化应变的影响

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摘要

The coupled nature of chemical kinetics, mechanical and rheological behavior of a curing prepreg dictates the dimensional accuracy of a composite laminate. In this work, an integrated study was carried out to understand the influence of thermo-chemo-mechanical and thermo-chemo-viscous effect on the curing strain of an epoxy laminate. The chemical kinetics of the resin was obtained from differential scanning calorimeter. The "instantaneous elastic modulus" was measured by using dynamic mechanical analyzer. An empirical model as a function of temperature and degree of cure (thermo-chemo-mechanical) was proposed to fit the elastic modulus data of the curing resin. This model correlates well with the experimental results offering improved accuracy than existing linear models and simpler than viscoelastic models. Rheology of the resin was investigated to obtain gelation, vitrification and viscosity information. The temperature-degree of cure-dependent viscosity was modeled empirically from the rheological data. The empirical models obtained for degree of cure, modulus and viscosity were used to predict the micro-level cure-induced strain of a curing composite and compared with experimental results.
机译:固化预浸料的化学动力学,机械和流变行为的耦合性质决定了复合层压板的尺寸精度。在这项工作中,进行了一项综合研究,以了解热化学机械和热化学粘滞效应对环氧层压板固化应变的影响。从差示扫描量热仪获得树脂的化学动力学。通过使用动态机械分析仪测量“瞬时弹性模量”。提出了温度和固化度(热化学机械)函数的经验模型,以拟合固化树脂的弹性模量数据。该模型与实验结果很好地相关,与现有的线性模型相比,提供了更高的准确性,并且比粘弹性模型更简单。研究了树脂的流变学以获得凝胶化,玻璃化和粘度信息。根据流变学数据,对与固化有关的粘度的温度度进行了经验建模。获得的固化度,模量和粘度的经验模型用于预测固化复合材料的微观水平固化诱导的应变,并与实验结果进行比较。

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