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Parameterization of below-cloud scavenging for polydisperse fine mode aerosols as a function of rain intensity

Title
Parameterization of below-cloud scavenging for polydisperse fine mode aerosols as a function of rain intensity
Authors
JungChang HoonLeeHyung-MinParkDasomYoonYoung JunChoiYongjooUmJunshikSeoung SooJi YiKimYong Pyo
Ewha Authors
김용표이지이이형민
SCOPUS Author ID
김용표scopus; 이지이scopus; 이형민scopus
Issue Date
2023
Journal Title
Journal of Environmental Sciences (China)
ISSN
1001-0742JCR Link
Citation
Journal of Environmental Sciences (China) vol. 132, pp. 43 - 55
Keywords
Below-cloud scavengingCunningham correction factorParameterizationPolydisperse aerosolScavenging coefficient
Publisher
Chinese Academy of Sciences
Indexed
SCIE; SCOPUS WOS scopus
Document Type
Article
Abstract
The below-cloud aerosol scavenging process by precipitation is one of the most important mechanisms to remove aerosols from the atmosphere. Due to its complexity and dependence on both aerosol and raindrop sizes, wet scavenging process has been poorly treated, especially during the removal of fine particles. This makes the numerical simulation of below-cloud scavenging in large-scale aerosol models unrealistic. To consider the slip effects of submicron particles, a simplified expression for the diffusion scavenging was developed by approximating the Cunningham slip correction factor. The derived analytic solution was parameterized as a simple power function of rain intensity under the assumption of the lognormal size distribution of particles. The resultant approximated expression was compared to the observed data and the results of previous studies including a 3D atmospheric chemical transport model simulation. Compared with the default GEOS-Chem coefficient of 0.00106R0.61 and the observation-based coefficient of 0.0144R0.9268, the coefficient of a and b in Λm = aRb spread in the range of 0.0002- 0.1959 for a and 0.3261- 0.525 for b over a size distribution of GSD of 1.3–2.5 and a geometric mean diameter of 0.01- 2.5 µm. Overall, this study showed that the scavenging coefficient varies widely by orders of magnitude according to the size distribution of particles and rain intensity. This study also demonstrated that the obtained simplified expression could consider the theoretical approach of aerosol polydispersity. Our proposed analytic approach showed that results can be effectively applied for reduced computational burden in atmospheric modeling. © 2022
DOI
10.1016/j.jes.2022.07.031
Appears in Collections:
공과대학 > 화공신소재공학과 > Journal papers
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