Daniele Finazzi , Marco Bertani , Wim Van Paepegem
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引用次数: 0
摘要
单向碳/聚酰胺-6(CPA6)是一种热塑性复合材料,在许多工业应用中都具有诱人的特性。然而,实验数据的缺乏可能会阻碍可靠材料模型的开发。本文首次提供了单向 CPA6 拉伸行为的完整数据集,包括不同温度和(准静态)应变率下的纵向、横向、面内剪切和离轴响应。文献中已经证实的用于室温下复合材料离轴测试的斜端片设计,被成功扩展到了 120 °C 的高温下。纸板片和快速固化粘合剂的使用大大简化了各种纤维角度、温度和应变率组合的片材制造和应用。通过温度室的窗口进行了数字图像相关(DIC),以验证斜片产生的均匀应变场。从离轴测试中提取面内剪切行为,从而估算剪切模量和剪切强度。最后,本研究中产生的实验结果的稳健性通过成熟的分析模型得到了证明,这些模型可以很好地预测不同纤维角度下的弹性模量、泊松比和破坏应力。
Temperature- and rate-dependent tensile behaviour of unidirectional carbon/polyamide-6 composite under off-axis loading with oblique tabs
Unidirectional carbon/polyamide-6 (CPA6) is a thermoplastic composite with attractive properties for many industrial applications. However, shortage of experimental data may hinder the development of reliable material models. This paper is the first to provide a complete dataset for the tensile behaviour of unidirectional CPA6, including the longitudinal, transverse, in-plane shear, and off-axis response, at different temperatures and (quasi-static) strain rates. The oblique end tab design, already proven in the literature for off-axis testing of composites at room temperature, was successfully extended to the elevated temperature of 120 °C. The use of cardboard tabs and fast-curing adhesive greatly simplified the tab manufacturing and application for all the combinations of fibre angles, temperatures and strain rates. Digital image correlation (DIC) was performed through the window of the temperature chamber to verify the homogeneous strain field produced by the oblique tabs. The in-plane shear behaviour was extracted from the off-axis tests, allowing to estimate the shear modulus and shear strength. Finally, the robustness of the experimental results generated in this study was demonstrated with well-established analytical models that could excellently predict the elastic modulus, Poisson’s ratio, and failure stress at different fibre angles.
期刊介绍:
Composites Science and Technology publishes refereed original articles on the fundamental and applied science of engineering composites. The focus of this journal is on polymeric matrix composites with reinforcements/fillers ranging from nano- to macro-scale. CSTE encourages manuscripts reporting unique, innovative contributions to the physics, chemistry, materials science and applied mechanics aspects of advanced composites.
Besides traditional fiber reinforced composites, novel composites with significant potential for engineering applications are encouraged.