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Submicron particle filtration in monolith filters - A modeling and experimental study

机译:整体过滤器中的亚微米颗粒过滤-建模和实验研究

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With over a million micron-sized channels per square centimeter arranged in a regular pattern on a thin film, monolith filters have significant potential for submicron aerosol particle filtration, even though the filtration process with this class of filters has not been well studied. In order to better understand the capture mechanisms and the main factors that affect the capture efficiency, so as to build predictive numerical models and to improve the design of monolith filters, the filtration process in monolith filters was investigated both experimentally and numerically. Using an electrostatic particle classifier (EPC) and a condensation particle counter (CPC), the experimental platform measured the capture efficiency of salt particles with diameters ranging from 50-300 nm on two monolith filter samples. Based on the filtration process and the repeating geometric structure, a single unit model was proposed. The drag force, electrostatic force, and Brownian motion are considered as the major forces affecting particle motion. Published theories underestimated the capture efficiency compared to the experimental results. The Brownian motion model and the capture criterion were then empirically modified to gain better agreement with the experiment.
机译:在薄膜上每平方厘米有超过百万个微米大小的规则排列的通道,整体式过滤器具有巨大的潜力,可用于亚微米气溶胶颗粒过滤,即使对此类过滤器的过滤过程尚未进行充分研究。为了更好地理解捕集机理和影响捕集效率的主要因素,以建立预测数值模型并改进整体过滤器的设计,对整体过滤器的过滤过程进行了实验和数值研究。实验平台使用静电粒子分级机(EPC)和冷凝粒子计数器(CPC),测量了直径为50-300 nm的盐在两个整体过滤器样品上的捕获效率。基于过滤过程和重复的几何结构,提出了一个单元模型。阻力,静电力和布朗运动被认为是影响粒子运动的主要力。与实验结果相比,已发表的理论低估了捕获效率。然后根据经验修改布朗运动模型和捕获准则,以与实验更好地达成一致。

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