Numerical simulation of the fine kinetics of dust reduction using high-speed aerosols

Author:

Jing Deji,Ma Jichuang,Zhang TianORCID,Ge Shaocheng,Ren ShuaiShuai,Ma Mingxing

Abstract

A numerical model of single-particle fog-dust collision coupling in a high-speed airflow based on three-phase flow theory. The effect of the fog-to-dust particle size ratio, relative velocity between the fog and dust particles, collision angle and contact angle at the wetting humidity function of dust particles is investigated. Different particle size ratios are determined for achieving the optimal wetting humidity for the interaction of high-velocity aerosols with dust particles of different sizes, for differ, that is, kPM2.5 = 2:1, kPM10 = 3.5:1 and kPM20 = 1.5:1. The optimal humidity increases with the relative velocity U between the fog and dust particles in the high-speed airflow. The larger the collision angle is, the lower the wetting rate is.The smaller the contact angle between the solid and liquid is, the better droplet wetting on dust is. The fine kinetic mechanism of single-particle fog-dust collision-coupling in a high-speed airflow is elucidated in this study.

Funder

National Natural Science Foundation of China Youth Fund Project

Liaoning Provincial Natural Science Foundation

Liaoning provincial funding for scientific research projects

China Postdoctoral Science Foundation

Publisher

Public Library of Science (PLoS)

Subject

Multidisciplinary

Reference28 articles.

1. World Health Organization. 9 out of 10 people worldwide breathe polluted air, but more countries are taking action[N]. World Health Organization, Geneva, https://www.who.int/news/item/02-05-2018.

2. White Mutagenic and Carcinogenic Hazards of Settled House Dust II: Salmonella Mutagenicity[J];Rebecca M Maertens;Environ. Sci. Technol,2008

3. A Predictive Model for Adsorptive Gas Partitioning of SOCs on Fine Atmospheric Inorganic Dust Particles[J];Myoseon Jang;Environ. Sci. Technol,1999

4. Kinetics of heterogeneous reaction of sulfur dioxide on authentic mineral dust: effects of relative humidity and hydrogen peroxide[J];Liubin Huang;Environ. Sci. Technol,2015

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