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Uniformity Analysis of Atmospheric Pressure Plasma Jet Treated Ultra-high Molecular Weight Polyethylene Fiber Surface

机译:大气压等离子体喷射处理超高分子量聚乙烯纤维表面的均匀性分析

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A new plasma jet, operating in helium/oxygen at atmospheric pressure (APPJ), has been used to induce changes in the surface properties of ultra-high Molecular Weight polyethylene (UHMWPE) fibers. Plasma jet works in an open system in which plasma is produced between capacitively coupled electrodes and then ejected from nozzle to form plasma jet. There is only some part of substrate surface directly contacted with plasma jet at atmospheric pressure while in dielectric barrier discharge plasma surfaces of substrate are all contacted with plasma. Therefore in this study, UHMWPE filament tows were used as the model system to investigate the uniformity of atmospheric pressure plasma jet surface modification in terms of morphology, roughness, chemical composition, and wettability of the fiber surface, as well as the interfacial shear strength of the fiber to epoxy, using scanning election microscopy (SEM), X-ray photoelectron spectroscopy (XPS), contact angle test, micro-bond test. It was concluded that APPJ can homogenously treat each single fiber in filament tow. And longer treatment time and higher output power induced more uniform and greater changes in the surface properties.
机译:在大气压(APPJ)的氦/氧中操作的新等离子体射流已用于诱导超高分子量聚乙烯(UHMWPE)纤维的表面性质的变化。等离子射流在开放系统中起作用,其中在电容耦合电极之间产生等离子体,然后从喷嘴喷射以形成等离子体射流。在大气压下只有一些基板表面与等离子体射流直接接触,而在介电阻挡放电等离子体中,基板的等离子体表面均与等离子体接触。因此,在本研究中,UHMWPE长丝丝将用作模型系统,以研究纤维表面的形态,粗糙度,化学成分和润湿性方面的大气压等离子体喷射表面改性的均匀性,以及纤维表面的互补性纤维环氧,使用扫描选举显微镜(SEM),X射线光电子能谱(XPS),接触角试验,微键试验。得出结论,Appj可以在长丝丝束中均匀地治疗每种单纤维。较长的治疗时间和更高的输出功率诱导表面特性的更均匀和更大的变化。

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