Numerical investigation on the discharge formation in micrometer pores in structured catalyst irradiated by a helium atmospheric pressure plasma jet

Wenjun Ning, Hao Shang, Xueming Shen, Saikang Shen, Xiaolong Huang, Lihua Zhao, Shenli Jia
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Abstract

Non-thermal plasma catalysis is a promising way to achieve high efficiency in applications such as energy conversion and chemical engineering. Although synergistic effect between plasma and catalysts has been preliminarily considered as an underlying mechanism of this type of catalysis, the formation of discharges in small-size catalyst pores, which is possible a crucial factor in plasma-activated catalysis, is still not well understood. In this paper, investigations on the interactions between a helium atmospheric pressure plasma jet (APPJ) and catalysts with micrometer-size pores of different shapes and sizes are conducted with a 2D fluid model. Simulation results show that the existence of pores makes subtle difference to the APPJ by changing equivalent capacitance, indicating the potential to achieve moderate and stable APPJ-catalysts interactions. Trace of air impurity in helium can promote the discharges in catalyst pores, and thus allow discharges forming in smaller pores. In the case when a catalyst channel is too small for direct APPJ penetration, we propose a method by producing a prior discharge in a relatively large cavity to supply seed electron to ignite discharges inside the channel. The effects of channel and cavity sizes are discussed from perspectives of discharge behavior and plasma-surface interactions. This work will contribute to the preparation of structured catalysts to potentially achieve higher efficient plasma catalysis, and better understanding the physical processes in plasma-surface interactions inside micrometer pores.
关于常压氦等离子体射流辐照结构催化剂微米孔隙中放电形成的数值研究
非热等离子体催化是在能源转换和化学工程等应用中实现高效率的一种很有前途的方法。虽然等离子体与催化剂之间的协同效应已被初步认为是这类催化的基本机制,但在小尺寸催化剂孔隙中形成的放电可能是等离子体活化催化中的一个关键因素,但人们对这一机制仍不甚了解。本文利用二维流体模型研究了氦气常压等离子体射流(APPJ)与具有不同形状和大小的微米级孔隙的催化剂之间的相互作用。模拟结果表明,孔隙的存在通过改变等效电容对 APPJ 产生了微妙的影响,这表明 APPJ 与催化剂之间有可能实现适度而稳定的相互作用。氦气中的微量空气杂质会促进催化剂孔隙中的放电,从而允许在较小的孔隙中形成放电。当催化剂通道太小而无法直接穿透 APPJ 时,我们提出了一种方法,即在一个相对较大的空腔中先行放电,以提供种子电子来点燃通道内的放电。我们从放电行为和等离子体与表面相互作用的角度讨论了通道和空腔大小的影响。这项工作将有助于制备结构催化剂,从而实现更高效的等离子体催化,并有助于更好地理解微米孔内等离子体与表面相互作用的物理过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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