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Loading rate effect of the interfacial tensile failure behavior in carbon fiber-epoxy composites toughened with ZnO nanowires

机译:用ZnO纳米线加固碳纤维 - 环氧复合材料中界面拉伸失效行为的加载速率效应

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摘要

This paper attempts to study the loading rate effect of interface tensile failure behavior of carbon fiber-epoxy composites toughened with ZnO nanowires (ZnO NWs). ZnO NWs were grown onto woven carbon fiber fabrics through a two-step hydrothermal method, the growth time was carefully controlled to vary the nanowire length. Subsequently, a series of quasi-static and dynamic transverse fiber bundle (TFB) tensile tests were carried out under different loading velocities, ranging from 1 x 10(-6) m/s on the universal testing machine to 9 m/s on the electromagnetic Hopkinson bar. A 2D representative volume element (RVE) model has been established to identify the load transfer and failure behavior of the ZnO NW modified interface. The results show that under quasi-static loading, the maximum TFB tensile strength improvement owing to ZnO NWs was about 36.9% and 16.5% when compared with the pristine fibers and the fibers with surface sizing. However, due to the loading rate enhancement of the interface bonding strength, the corresponding values were decreased to 13.9% and 5.0% under dynamic loading. Besides, nanowires with medium length are recommended, because too long nanowires shall reduce the matrix impregnation space between fibers, and the microcracks from the fiber/matrix interface can easily deflect into the matrix along the nanowires. This side-effect may neutralize the enhancement mechanism of ZnO NWs when their length increases to a certain extent.
机译:本文试图研究碳纤维 - 环氧复合材料的界面拉伸性能的负载效应,用ZnO纳米线(ZnO NWS)增韧。 ZnO NWS通过两步水热法生长在编织碳纤维织物上,仔细控制生长时间以改变纳米线长度。随后,在不同的加载速度下进行一系列准静态和动态横向纤维束(TFB)拉伸试验,在通用测试机上的1×10(6)M / s范围为9米/秒电磁霍普金森棒。已经建立了2D代表卷元素(RVE)模型以识别Zno NW修改接口的负载传输和故障行为。结果表明,与ZnO NWS相比,由于ZnO NWS的最大TFB拉伸强度改善约为36.9%和16.5%,与具有表面施胶的纤维相比。然而,由于界面粘合强度的加载速率提高,在动态负载下,相应的值降低至13.9%和5.0%。此外,建议使用中长度的纳米线,因为纳米线太长,应在纤维之间减少基质浸渍空间,并且来自纤维/矩阵界面的微裂纹可以容易地沿纳米线偏转到基质中。当它们的长度在一定程度上增加时,这种副作用可以中和ZnO NWS的增强机制。

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  • 来源
    《Composites. B, Engineering》 |2021年第1期|108676.1-108676.10|共10页
  • 作者单位

    Northwestern Polytech Univ Sch Aeronaut Xian 710072 Shaanxi Peoples R China|Northwestern Polytech Univ Joint Int Res Ctr Impact Dynam & Its Engn Applica Xian 710072 Shaanxi Peoples R China;

    Northwestern Polytech Univ Sch Aeronaut Xian 710072 Shaanxi Peoples R China|Northwestern Polytech Univ Joint Int Res Ctr Impact Dynam & Its Engn Applica Xian 710072 Shaanxi Peoples R China;

    Northwestern Polytech Univ Sch Civil Aviat Xian 710072 Shaanxi Peoples R China|Northwestern Polytech Univ Joint Int Res Ctr Impact Dynam & Its Engn Applica Xian 710072 Shaanxi Peoples R China;

    Univ Sydney Ctr Adv Mat Technol Sch Aerosp Mech & Mechatron Engn Sydney NSW 2006 Australia;

    Northwestern Polytech Univ Sch Aeronaut Xian 710072 Shaanxi Peoples R China|Northwestern Polytech Univ Joint Int Res Ctr Impact Dynam & Its Engn Applica Xian 710072 Shaanxi Peoples R China;

    Northwestern Polytech Univ Sch Aeronaut Xian 710072 Shaanxi Peoples R China|Northwestern Polytech Univ Joint Int Res Ctr Impact Dynam & Its Engn Applica Xian 710072 Shaanxi Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    ZnO nanowires; Transverse fiber bundle; Dynamic fracture; Representative volume element;

    机译:ZnO纳米线;横向纤维束;动态骨折;代表体积元素;
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