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Plasma-target surface interaction during non-equilibrium plasma irradiation at atmospheric pressure: Generation of dusty plasma

机译:大气压非平衡等离子体辐照过程中的等离子体-靶表面相互作用:尘土等离子体的产生

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摘要

The remaining challenges, developing the relativistic electron beam sources, stimulate the investigations of cathode materials. Carbon-fiber-aluminum composite is the most appropriate cathode materials to construct the robust relativistic electron beam sources. Carbon-fiber-aluminum composite is treated by a non-equilibrium atmospheric plasma torch with a copper electrode based on high-voltage gas discharge. The axial and radial distributions of the plasma torch temperature are measured to determine the optimal treatment temperature and location. Copper-oxide particles with diameters of less than 1 μm are deposited onto the surface of the carbon-fibers and a layer of copperoxide covers the entire surface as the treatment time is increased. Raman spectroscopy suggests that although the locations of the D and G band are similar, the areas of the D and G bands increase after the plasma treatment due to the reduced graphite crystalline size in the carbon-fibers. Analysis of the copper electrode surface discloses materials ablation arising from the discharge which releases copper from the source. Our results reveal that the atmospheric plasma torch generated by high-voltage discharge is promising in the surface modification of the carbon-fiberreinforced aluminum composite. Further, the plasma produced by atmospheric plasma torch is dusty plasma, due to the participation of liberated copper particles. The plasma torch was analyzed by fluid dynamics, in terms of plasma density, plasma expansion velocity, and internal pressure, and it was found that the plasma produced by atmospheric torch is supersonic flow.
机译:剩下的挑战,发展相对论电子束源,刺激了阴极材料的研究。碳纤维-铝复合材料是构建坚固的相对论电子束源的最合适的阴极材料。碳纤维-铝复合材料通过基于高压气体放电的带有铜电极的非平衡大气等离子炬进行处理。测量等离子炬温度的轴向和径向分布,以确定最佳的治疗温度和位置。直径小于1μm的氧化铜颗粒沉积在碳纤维的表面,随着处理时间的增加,一层氧化铜覆盖了整个表面。拉曼光谱表明,尽管D和G带的位置相似,但是由于碳纤维中石墨晶体尺寸的减小,在等离子处理之后D和G带的面积增加。对铜电极表面的分析揭示了由于放电而产生的材料烧蚀,放电会从源中释放出铜。我们的结果表明,高压放电产生的大气等离子炬在碳纤维增强铝复合材料的表面改性中很有前景。此外,由于释放的铜颗粒的参与,由大气等离子体炬产生的等离子体是尘土等离子体。通过等离子体动力学,等离子体密度,等离子体膨胀速度和内部压力对等离子体炬进行了流体动力学分析,发现大气炬产生的等离子体为超音速流动。

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