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首页> 外文期刊>Frontiers in Materials >Dimensional Scaling and Failure Pattern of the Tensile Properties of Angle-Ply Thermoplastic Composites of Twaron Fiber/Polypropylene
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Dimensional Scaling and Failure Pattern of the Tensile Properties of Angle-Ply Thermoplastic Composites of Twaron Fiber/Polypropylene

机译:Twaron纤维/聚丙烯角层热塑性复合材料拉伸性能的尺寸尺度和破坏模式

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Thermoplastic multilayer composites with different fiber orientations per layer were prepared with polypropylene and aramid fibers as reinforcing material. The prepregs were prepared in a continuous impregnation system using the dry powder method in a fluidized bed. The specimens were laminated by compression molding, tensile tested and their fracture area was analyzed by microscopy. The mechanical performance of the laminates was influenced by the fiber orientation at the different layers. The fibers at 0° conferred high stiffness to the composite, limiting the maximum deformation and promoting failure. The laminates with 0o layers showed a fragile and sudden fracture oriented at 90° to the aplied load, even with low fiber content. The plies oriented at ? 45° balanced the stress and contributed to higher levels of deformation during the test due to fiber rotation towards the loading direction, also, no post-yield stiffening was found as in thermoset composites due to the ductile nature of the thermoplastic matrix; these layers limited the crack propagation in the transverse direction, canceling the in-plane shear stress. The fibers at 90° acted as filler due to poor interface and did not contribute to the improvement of the composite mechanical performance. The evidence shows no delamination in the materials due to the tenacious nature of the thermoplastic matrix, neither saw-toothed or plateau region was found in the stress-strain curves in contrast to thermoset laminates.
机译:以聚丙烯和芳纶纤维为增强材料,制备了每层具有不同纤维取向的热塑性多层复合材料。在流化床中使用干粉法在连续浸渍系统中制备预浸料。通过压缩成型将样品层压,进行拉伸测试,并通过显微镜分析其断裂面积。层压板的机械性能受不同层纤维取向的影响。纤维在0°时赋予复合材料高刚度,限制了最大变形并促进了破坏。具有0o层的层压材料即使在纤维含量较低的情况下,也表现出在与载荷成90°取向的脆性和突然断裂。面向? 45°平衡了应力,并在测试过程中由于纤维朝着加载方向旋转而导致较高的变形水平。此外,由于热塑性基体的延展性,未发现像热固性复合材料那样屈服后变硬。这些层限制了裂纹在横向方向上的传播,消除了面内剪切应力。由于不良的界面,在90°时的纤维充当了填料,并没有改善复合材料的机械性能。证据表明,由于热塑性基体的坚韧特性,材料没有分层,与热固性层压板相比,在应力-应变曲线中均未发现锯齿状或平稳区域。

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