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PMID: 37999579 Published · epublish English Journal Article Review

Simulating Microscale Urban Airflow and Pollutant Distributions Based on Computational Fluid Dynamics Model: A Review.

Toxics ·Vol. 11 ·No. 11 ·2023-11-13

Liang Q, Miao Y, Zhang G, Liu S

Abstract

Urban surfaces exert profound influences on local wind patterns, turbulence dynamics, and the dispersion of air pollutants, underscoring the critical need for a thorough understanding of these processes in the realms of urban planning, design, construction, and air quality management. The advent of advanced computational capabilities has propelled the computational fluid dynamics model (CFD) into becoming a mature and widely adopted tool to investigate microscale meteorological phenomena in urban settings. This review provides a comprehensive overview of the current state of CFD-based microscale meteorological simulations, offering insights into their applications, influential factors, and challenges. Significant variables such as the aspect ratio of street canyons, building geometries, ambient wind directions, atmospheric boundary layer stabilities, and street tree configurations play crucial roles in influencing microscale physical processes and the dispersion of air pollutants. The integration of CFD with mesoscale meteorological models and cutting-edge machine learning techniques empowers high-resolution, precise simulations of urban meteorology, establishing a robust scientific basis for sustainable urban development, the mitigation of air pollution, and emergency response planning for hazardous substances. Nonetheless, the broader application of CFD in this domain introduces challenges in grid optimization, enhancing integration with mesoscale models, addressing data limitations, and simulating diverse weather conditions.

Keywords
air pollution microclimate pollutant dispersion street canyon urban meteorology
作者与单位
共 4 位作者,点击展开单位 / ORCID
Liang Qian
State Key Laboratory of Severe Weather & Key Laboratory of Atmospheric Chemistry of CMA, Chinese Academy of Meteorological Sciences, Beijing 100081, China.
Miao Yucong
State Key Laboratory of Severe Weather & Key Laboratory of Atmospheric Chemistry of CMA, Chinese Academy of Meteorological Sciences, Beijing 100081, China.
Zhang Gen
State Key Laboratory of Severe Weather & Key Laboratory of Atmospheric Chemistry of CMA, Chinese Academy of Meteorological Sciences, Beijing 100081, China.
Liu Shuhua
Department of Atmospheric and Oceanic Sciences, School of Physics, Peking University, Beijing 100871, China.
Article Info
Journal
Toxics
Abbr.
Toxics
ISSN
2305-6304
Published
2023-11-13
电子出版
2023-00-13
Language
English
Country/Region
Switzerland
NLM ID
101639637
基金资助
National Natural Science Foundation of China · 42275198
Chinese Academy of Meteorological Sciences · 2022KJ001
National Natural Science Foundation of China · 42030608
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