Interaction of atmospheric pressure helium plasma jet with non-planar substrates: path selectivity of surface ionization wave

Guoqiang Liu, Jiateng Zhou, Yang Xia, Y. X. Wang, Dongping Liu
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Abstract

Most surfaces treated by atmospheric pressure plasma jets (APPJs) in practical applications are notably three-dimensional. However, non-planar surfaces exhibit a diverse array of geometries, such as variations in curvature, roughness, and texture, complicating the prediction of surface ionization waves (SIW) propagation behavior across varied surface shapes, in the absence of sufficient experimental data. In this study, we made measurements of APPJ interactions with the non-planar substrates using the spatio-temporal resolved image method. Non-planar substrates encompassed wavy surfaces, arrayed hemispheres, and randomly textured raised surfaces. We tracked the morphology and velocity of SIW propagation over these surfaces. The results indicate that the SIW propagation on non-planar surfaces is significantly influenced by surface geometry and displays path selectivity, i.e., the SIW tends to propagate along valleys. The average propagation velocity of the SIW increases with the increasing radius of the wavy surface, as well as with the increased height of the arrayed hemispheres. This is attributable to the surface geometry constraining the dispersion of the SIW, causing it to concentrate and propagate in a singular direction. Moreover, the surface geometry markedly affects the distribution of the plasma treatment area, with the plasma inclined to enter valleys (where the light emission is significantly stronger than that of peaks) and to closely adhere to hemispherical surfaces. These patterns suggest a potential positive impact on treating skin surfaces such as pores, reducing bacteria in wrinkles, and addressing pimples.
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常压氦等离子体射流与非平面基底的相互作用:表面电离波的路径选择性
在实际应用中,大气压等离子射流(APPJ)处理的大多数表面都是三维的。然而,非平面表面呈现出多种多样的几何形状,例如曲率、粗糙度和纹理的变化,这使得在缺乏足够实验数据的情况下,预测表面电离波(SIW)在不同形状表面的传播行为变得更加复杂。在这项研究中,我们使用时空分辨图像法测量了 APPJ 与非平面基底的相互作用。非平面基底包括波浪形表面、阵列半球和随机纹理的凸起表面。我们跟踪了 SIW 在这些表面上的形态和传播速度。结果表明,SIW 在非平面表面上的传播受表面几何形状的影响很大,并显示出路径选择性,即 SIW 倾向于沿着山谷传播。随着波浪形表面半径的增加,以及阵列半球高度的增加,SIW 的平均传播速度也在增加。这是因为表面的几何形状限制了 SIW 的扩散,使其向单一方向集中和传播。此外,表面几何形状明显影响等离子体处理区域的分布,等离子体倾向于进入谷地(在谷地,光发射明显强于峰值),并紧贴半球表面。这些模式表明,等离子体在治疗毛孔等皮肤表面、减少皱纹中的细菌和解决粉刺方面具有潜在的积极影响。
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