Article ID Journal Published Year Pages File Type
239261 Powder Technology 2006 7 Pages PDF
Abstract

In this study, analytical solutions for penetration efficiency of a polydisperse aerosol in fibrous filter were derived employing Brownian diffusion and inertial impaction as removal mechanisms. Size distribution of aerosol particles was assumed to be represented by a log-normal function during the filtration. Derived solutions were compared with the exact solution, which is not based on the log-normal assumption, showing good agreement. Error resulting from the log-normal assumption was shown to be greater in the impaction-dominant regime than in the diffusion-dominant regime due to higher size dependency of collision kernel which destructed log-normal shape of size distribution. The penetration efficiency of the analytic solution initially decreases faster and then decreases slower than that of the exact solution in the diffusion-and intermediate dominant size regimes due to its polydispersity of particle distribution, while it overpredicted the particle removal in the impaction size range because of neglect of polidispersity effect. A new solution for the most penetrating particle diameter was also provided showing the dependence on filtration velocity, fiber volume fraction, and fiber size.

Graphical abstractFigure optionsDownload full-size imageDownload as PowerPoint slideThis paper presented analytical solutions for penetration efficiency of a polydisperse aerosol in fibrous filter employing Brownian diffusion and inertial impaction as removal mechanisms. Size distribution of aerosol particles was assumed to be represented by a log-normal function during the filtration. A new solution for the most penetrating particle was also provided showing the dependence on filtration velocity, fiber volume fraction, and fiber size.

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Physical Sciences and Engineering Chemical Engineering Chemical Engineering (General)
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