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不同纤维-基体粘结情况下玻璃/纤维素增强聚丙烯单纤维拔出试验中混杂效应的证明

Demonstration of Hybrid Effect in Single Fiber Pull-Out Tests for Glass/Cellulose-Reinforced Polypropylene with Different Fiber-Matrix Adhesions.

作者信息

Kahl Christian, Bagnucki Julius, Zarges Jan-Christoph

机构信息

Institute of Material Engineering, Polymer Engineering, University of Kassel, 34125 Kassel, Germany.

出版信息

Polymers (Basel). 2022 Jun 21;14(13):2517. doi: 10.3390/polym14132517.

Abstract

In hybrid fiber reinforcement, the combination of glass and regenerated cellulose fibers is a promising combination because the different properties of the fibers can be combined. The properties of the regenerated cellulose fiber in combination with the absorption of energy by fiber pull-outs can thus significantly increase the toughness of the composite in the event of failure, while the glass fiber significantly increases the stiffness and strength due to its properties. In this study, the interaction of the two fiber types in a composite is demonstrated by fiber pull-outs. For this purpose, the fibers are embedded in a PP matrix and simultaneously pulled out. Different bondings of the fiber by, e.g., coupling agent and/or a pretreatment of the regenerated cellulose fiber, were also investigated. The results show that each type of fiber has a characteristic force-deformation curve, and the hybrid reinforcement is a combination of both curves. The use of a coupling agent leads to an increase in the interfacial shear stress from 4.5 to 7.5 MPa. A treatment of the regenerated cellulose fiber by UV light further increases the interfacial shear stress to 11 MPa.

摘要

在混合纤维增强中,玻璃纤维和再生纤维素纤维的组合是一种很有前景的组合,因为可以将不同纤维的特性结合起来。再生纤维素纤维的特性与纤维拔出时的能量吸收相结合,因此在复合材料失效时可显著提高其韧性,而玻璃纤维因其特性可显著提高复合材料的刚度和强度。在本研究中,通过纤维拔出展示了复合材料中两种纤维类型的相互作用。为此,将纤维嵌入聚丙烯基体中并同时拔出。还研究了通过例如偶联剂和/或对再生纤维素纤维进行预处理来实现纤维的不同结合方式。结果表明,每种纤维都有一条特征性的力-变形曲线,混合增强是两条曲线的组合。使用偶联剂可使界面剪切应力从4.5兆帕增加到7.5兆帕。用紫外线对再生纤维素纤维进行处理可进一步将界面剪切应力提高到11兆帕。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ebc1/9269084/103844d5ec1d/polymers-14-02517-g001.jpg

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