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Tailored Interfaces in Fiber-Reinforced Elastomers: A Surface Treatment Study on Optimized Load Coupling via the Modified Fiber Bundle Debond Technique

机译:纤维增强弹性体的量身定制的界面:通过改进的光纤束借方技术进行了关于优化负载耦合的表面处理研究

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摘要

The interface between the reinforcement and surrounding matrix in a fibrous composite is decisive and critical for maintaining component performance, durability, and mechanical structure properties for load coupling assessment, especially for highly flexible composite materials. The clear trend towards tailored solutions reveals that an in-depth knowledge on surface treating methods to enhance the fiber–matrix interfacial interaction and adhesion properties for an optimized load transfer needs to be ensured. This research aims to quantify the effect of several surface treatments for glass fibers applied in endless fiber-reinforced elastomers with pronounced high deformations. Due to this, the glass fiber surface is directly modified with selected sizings, using a wet chemical treatment, and characterized according to chemical and mechanical aspects. For this purpose, the interfacial adhesion performance between fibers and the surrounding matrix material is investigated by a modified fiber pull-out device. The results clearly show that an optimized surface treatment improves the interface strength and chemical bonding significantly. The fiber pull-out test confirms that an optimized fiber–matrix interface can be enhanced up to 85% compared to standard surface modifications, which distinctly provides the basis of enhanced performances on the component level. These findings were validated by chemical analysis methods and corresponding optical damage analysis.
机译:纤维复合材料中加强和周围基质之间的界面是决定性的,对于维持负载耦合评估的部件性能,耐久性和机械结构性能,特别是对于高度柔韧的复合材料,是决定性的并且是至关重要的。定制解决方案的明显趋势揭示了对表面处理方法的深入知识,以增强用于优化负载转移的纤维 - 基质界面相互作用和粘合性能。该研究旨在量化玻璃纤维在无环纤维增强弹性体中涂覆的玻璃纤维的效果,具有明显的高变形。由此,使用湿化学处理,用所选型尖锐直接修饰玻璃纤维表面,并根据化学和机械方面的特征。为此目的,通过改进的光纤拉出装置研究了纤维和周围基质材料之间的界面粘附性能。结果清楚地表明,优化的表面处理显着提高了界面强度和化学粘合。光纤拉出试验证实,与标准表面修改相比,优化的光纤矩阵界面可提高85%,这明显提供了组件水平上增强性能的基础。通过化学分析方法和相应的光学损伤分析验证了这些发现。

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