首页> 外文会议>ASME 2nd Multifunctional Nanaocomposites and Nanomaterials and Nanomaterials Conference: Design and Modeling of Nanomaterials... >TENSILE AND SHEAR PROPERTIES OF BIAXIAL FLAT BRAIDED CARBON/EPOXY COMPOSITES WITH DISPERSED CARBON NANOFIBERS IN THE MATRIX
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TENSILE AND SHEAR PROPERTIES OF BIAXIAL FLAT BRAIDED CARBON/EPOXY COMPOSITES WITH DISPERSED CARBON NANOFIBERS IN THE MATRIX

机译:基质中碳纳米散布的双轴扁平编织碳/环氧树脂复合材料的拉伸和剪切性能

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In laminated flat braided composites there are no fibers through the thickness direction except at the edges due to the fiber continuity of the braiding technique. A delamination along the interlaminar planes can be propagated because of the lack of fibers in the Z- or third-direction to the composite. The delamination initiates essentially as a result of arising the stresses concentrations around the transverse or matrix cracks that appear due to the mismatch of the thermal expansion coefficients of the fibers and matrix during the fabrication process. The delamination renders low interlaminar composite properties and represents a fundamental weakness of laminated flat braided composites especially with increasing the braiding angle, and thus minimizes the shear stress transfer. In this research, laminated flat braided carbon fabrics were performed via flattening tubular braided fabrics with braiding angle of ±45° by applying carefully compressive loads laterally on the tubular fabrics. Then, carbon fiber reinforced epoxy matrix composites were fabricated from the above-mentioned biaxial fabrics with and without uniformly dispersed carbon nanofibers throughout the epoxy matrix. Three loading percentages of carbon nanofibers (specifically, 0.5, 1, and 2 wt%) were dispersed in the matrix of the composites to enhance the matrix and interlaminar/inter-ply properties. The influence of matrix and interlaminar properties improvements on the in-plane tensile and shear response of the laminated flat braided composites was clarified via conducting of ±45° laminates tensile tests. The experimental results of tensile tests revealed that the tensile and in-plane shear properties as well as the fracture behavior of the composites are substantially influenced by the incorporation of the dispersed carbon nanofibers in the matrix of the composites. A pulsed thermography technique was used to inspect the occurrence of the delamination after the fracture under tensile loadings. The thermal wave image and logarithmic temperature-time curves of the pulsed thermography inspection illustrated that the composites with dispersed carbon nanofibers rendered higher interlaminar properties than that of composites without nanofibers. The main conclusion of this research can be summarized that dispersion of carbon nanofibers through the epoxy matrix of laminated flat braided composites is not only enhanced the matrix properties but also improved the interphase morphology between the composite plies that maximized the stress transfer of the composites. In other words, the fabricated braided composites with braiding angle of ±45° are predominantly by both of matrix and interlaminar properties.
机译:在层压的扁平编织复合物中,由于编织技术的纤维连续性,在厚度方向上没有纤维,除了在边缘处没有纤维。由于在Z方向或第三方向上缺少到复合材料的纤维,因此可以传播沿层间平面的分层。基本上由于在制造过程中由于纤维和基体的热膨胀系数的不匹配而出现的横向或基体裂纹周围的应力集中引起应力集中而开始分层。分层导致层间复合材料性能低,并且代表了层压的扁平编织复合材料的基本缺点,尤其是随着编织角度的增加,从而使剪切应力传递最小。在这项研究中,通过在管状织物上横向施加细微的压缩载荷,将编织角度为±45°的管状编织织物弄平,从而制成层压平编织碳纤维织物。然后,由上述双轴织物制造碳纤维增强的环氧基质复合材料,其中在整个环氧基质中具有和不具有均匀分散的碳纳米纤维。将三种负载百分比的碳纳米纤维(具体为0.5、1、2重量%)分散在复合材料的基质中,以增强基质和层间/层间性能。通过进行±45°层压板拉伸试验,明确了基体和层间性能改善对层压平编织复合材料面内拉伸和剪切响应的影响。拉伸试验的实验结果表明,复合材料的基质中掺入分散的碳纳米纤维对复合材料的拉伸和面内剪切性能以及断裂行为有很大影响。脉冲热成像技术用于检查在拉伸载荷作用下断裂后的分层现象。脉冲热成像检查的热波图像和对数温度-时间曲线表明,具有分散碳纳米纤维的复合材料比没有纳米纤维的复合材料具有更高的层间性能。这项研究的主要结论可以总结为,碳纳米纤维通过层压扁平编织复合材料的环氧树脂基体分散不仅增强了基体性能,而且改善了复合层之间的相间形态,从而最大程度地提高了复合材料的应力传递。换句话说,编织角度为±45°的编织复合材料主要具有基体和层间性能。

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