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Impact properties of thermoplastic composites

机译:热塑性复合材料的冲击性能

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The excellent properties exhibited by thermoplastic composites at much reduced weight have attracted attention in the development of products in different sectors. Thermoplastic (TP) composites, because of their distinctive properties as well as ease of manufacturing, have emerged as a competitor against the conventional thermoset resin-based composites. Depending on the application, these composites may undergo impact events at various velocities and often fail in many complex modes. Hence, the development of TP composites having high energy-dissipation at (the desired) much-reduced weight has become a challenging task, but it is a problem which may be alleviated through the appropriate selection of materials and fabrication processes. Furthermore, fibre surface modification has been shown to increase fibre-matrix interfacial adhesion, which can lead to improved impact resistance. Textile preforms are helpful in acting as a structural backbone in the composites since they offer a relatively free hand to the composite designer to tailor its properties to suit a specific application. Additionally, hybrid textile composite structures may help in achieving the desired properties at much lower weight. Simulation software can play a significant role in the evaluation of composites without damaging physical samples. Once the simulation result has been validated with actual experimental results, it should be possible to predict the test outcomes for different composites, with different characteristics, at different energy levels without conducting further physical tests. Various numerical models have been developed which have to be incorporated into these software tools for better prediction of the result. In the current issue of Textile Progress, the effects of various materials and test parameters on impact behaviour are critically analyzed. The effect of incorporating high-performance fibres and natural fibres or their hybrid combination on the impact properties of TP composites are also discussed and the essential properties of TP polymers are briefly explained. The effects of fibre and matrix hybridization, environmental factors, various textile preform structures and fibre surface modification treatments on the impact properties of thermoplastic composites are examined in detail. Various numerical models used for impact analysis are discussed and the potential applications of TP composites in automobile, aerospace and medical sectors are highlighted.
机译:热塑性复合材料以大大降低的重量表现出的优异性能引起了不同领域产品开发的关注。热塑性(TP)复合材料,由于其独特的性能以及易于制造,已经成为与常规热固性树脂基复合材料的竞争者。根据应用的不同,这些复合材料可能会经历各种速度的撞击事件,并经常在许多复杂模式下失效。因此,开发以(所需的)大大降低的重量具有高能量耗散的TP复合材料已经成为一项具有挑战性的任务,但是通过适当选择材料和制造工艺可以缓解该问题。此外,已表明纤维表面改性可增加纤维与基质的界面粘合力,从而可提高抗冲击性。纺织品预成型件有助于在复合材料中充当结构骨干,因为它们为复合材料设计人员提供了相对自由的手以调整其性能以适合特定的应用。另外,混合纺织品复合结构可以以低得多的重量帮助实现期望的性能。仿真软件可以在不损坏物理样本的情况下在复合材料评估中发挥重要作用。一旦模拟结果已经通过实际实验结果验证,就应该有可能在不进行进一步物理测试的情况下,以不同的能级预测具有不同特性的不同复合材料的测试结果。已经开发了各种数值模型,这些数值模型必须合并到这些软件工具中,以便更好地预测结果。在本期《纺织进展》中,严格分析了各种材料和测试参数对冲击行为的影响。还讨论了掺入高性能纤维和天然纤维或它们的混合组合对TP复合材料冲击性能的影响,并简要解释了TP聚合物的基本性能。详细研究了纤维和基体杂交,环境因素,各种纺织品预成型坯结构和纤维表面改性处理对热塑性复合材料冲击性能的影响。讨论了用于冲击分析的各种数值模型,并突出了TP复合材料在汽车,航空航天和医疗领域的潜在应用。

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