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首页> 外文期刊>Journal of Applied Polymer Science >Improved hydrothermal aging performance of glass fiber-reinforced polymer composites via silica nanoparticle coating
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Improved hydrothermal aging performance of glass fiber-reinforced polymer composites via silica nanoparticle coating

机译:通过二氧化硅纳米粒子涂层改善玻璃纤维增强聚合物复合材料的水热老化性能

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摘要

The long-term exposure to a hot and humid environment severely damages the bonding integrity of fiber-reinforced polymer composites and thus significantly degrades their mechanical performances. In this work, we aim to develop an improvement procedure for effectively enhancing the bonding strength in glass fiber-reinforced polymers (GFRPs). Glass fibers were coated with a thin layer of silica nanoparticles of different concentrations by the use of the evaporative deposition method. Micromorphological comparisons in terms of scanning electron microscope imaging demonstrate significant improvements on the surface roughness of glass fibers. With the coated glass fibers, GFRP composite laminates were designed, molded through the vacuum-assisted resin infusion technique, and experimentally tested for quantitatively studying their hydrothermal aging performance. The water absorption tests conducted for three exposure temperatures suggest that both the water diffusion rate and the equilibrium water content can be effectively reduced due to the introduction of the silica coating. With increased exposure temperatures, however, the desired reductions become much less significant. A so-called water-channel diffusion mechanism along fiber/resin interfaces was proposed to explain the coupling effects of silica coating and exposure temperature. Reductions of water diffusion rate and equilibrium water content were expected to slow down the hydrothermal aging performance of GFRPs. For this purpose, both uniaxial tensile test and three-point bending test were subsequently performed on GFRP specimens that have been subjected to different coating concentrations, exposure temperatures, and exposure durations. When compared with untreated GFRP specimens, both experiments demonstrate that the residual strength and stiffness can be effectively promoted through coating a thin layer of silica nanoparticles on glass fiber surfaces. (c) 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2019, 137, 48652.
机译:长期暴露于高温高湿环境严重损害的纤维增强的聚合物复合材料的接合完整性并因此显著降低它们的机械性能。在这项工作中,我们的目标是开发一种改进的程序用于有效地加强玻璃纤维增​​强的聚合物(GFRPs)的结合强度。玻璃纤维涂覆有通过使用蒸发沉积方法的薄层不同浓度的二氧化硅纳米粒子的。在扫描电子显微镜成像方面微形态比较表明在玻璃纤维的表面粗糙度显著改进。随着经涂覆的玻璃纤维,GFRP复合材料层压板设计,通过真空辅助的树脂灌注技术模制而成,并且用于定量研究它们的水热老化性能测试实验。三个曝光的温度下进行的水吸收试验表明,这两个水扩散速率和平衡水含量可以由于引入二氧化硅涂层的被有效地降低。随着越来越多的曝光下,然而,所需的减排变得显著少得多。提出了沿纤维/树脂界面所谓水沟道扩散机制来解释二氧化硅涂层和暴露温度的耦合效应。水的扩散速率和平衡水含量的减少,预计到水热老化GFRPs的性能减慢。为了这个目的,对已经经历不同的包被浓度,暴露温度和持续时间曝光GFRP试样随后进行两个单轴拉伸试验及三点弯曲试验。当与未经处理的试样GFRP相比,两个实验表明,该残余强度和刚度可以通过涂覆的二氧化硅纳米粒子的在玻璃纤维表面上的薄层被有效地促进。 (c)2019 Wiley期刊,Inc.J.Phill。聚合物。 SCI。 2019年,137,48652。

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