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基于冷大气等离子体活化碳纤维带增强的聚苯硫醚基层压板的结构与变形行为

Structure and Deformation Behavior of Polyphenylene Sulfide-Based Laminates Reinforced with Carbon Fiber Tapes Activated by Cold Atmospheric Plasma.

作者信息

Kosmachev Pavel V, Panin Sergey V, Panov Iliya L, Bochkareva Svetlana A

机构信息

Microelectronics of Multispectral Quantum Introscopy Laboratory of the R&D Center "Advanced Electronic Technologies", National Research Tomsk State University, 634050 Tomsk, Russia.

Laboratory of Mechanics of Polymer Composite Materials, Institute of Strength Physics and Materials Science of Siberian Branch of Russian Academy of Sciences, 634055 Tomsk, Russia.

出版信息

Polymers (Basel). 2023 Dec 29;16(1):121. doi: 10.3390/polym16010121.

Abstract

Low-temperature plasma treatment with atmospheric discharge with runaway electrons (DRE) was shown to be an efficient way to activate carbon fiber's (CF) surface and subsequently increase its interlayer shear strength (ILSS) values. It was demonstrated that an acceptable ILSS level was achieved after a DRE plasma treatment duration of 15 min. The treatment of CFs resulted in their surface roughness being increased and their functional groups grafting. The XPS data showed a change in the chemical composition and the formation of reactive oxygen-containing groups. SEM examinations of the PPS/CF laminates clearly demonstrated a difference in adhesive interaction at the PPS/CF interface. After the DRE plasma treatment, CFs were better wetted with the polymer, and the samples cohesively fractured predominantly through the matrix, but not along the PPS/CF interface, as was observed for the sample reinforced with the untreated CFs. The computer simulation results showed that raising the adhesive strength enhanced the ILSS values, but reduced resistance to transverse cracking under the loading pin. In general, higher flexural strength of the PPS/CF laminates was achieved with a greater interlayer adhesion level, which was consistent with the obtained experimental data.

摘要

采用具有逃逸电子(DRE)的常压放电进行低温等离子体处理,被证明是一种激活碳纤维(CF)表面并随后提高其层间剪切强度(ILSS)值的有效方法。结果表明,在DRE等离子体处理15分钟后,可达到可接受的ILSS水平。对CFs的处理导致其表面粗糙度增加以及官能团接枝。XPS数据显示了化学成分的变化以及含活性氧基团的形成。对PPS/CF层压板的SEM检查清楚地表明了PPS/CF界面处粘附相互作用的差异。经过DRE等离子体处理后,CFs能更好地被聚合物润湿,并且样品主要通过基体发生内聚断裂,而不像未处理CFs增强的样品那样沿着PPS/CF界面断裂。计算机模拟结果表明,提高粘附强度会提高ILSS值,但会降低加载销下的抗横向开裂能力。总体而言,PPS/CF层压板具有更高的弯曲强度,且层间粘附水平更高,这与获得的实验数据一致。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de75/10780355/5c5656e8e2f2/polymers-16-00121-g001.jpg

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