Impact of Aerosol Shortwave Radiative Heating on Entrainment in the Atmospheric Convective Boundary Layer: A Large-Eddy Simulation Study

Author:

Liu Cheng1ORCID,Fedorovich Evgeni2,Huang Jianping1,Hu Xiao-Ming23,Wang Yongwei1,Lee Xuhui14

Affiliation:

1. Yale–Nanjing University of Information Science and Technology Center on Atmospheric Environment, International Joint Laboratory on Climate and Environment Change/Collaborative Innovation Center on Forecast and Evaluation of Meteorological Disasters, Nanjing University of Information Science and Technology, Nanjing, China

2. School of Meteorology, University of Oklahoma, Norman, Oklahoma

3. Center for Analysis and Prediction of Storms, University of Oklahoma, Norman, Oklahoma

4. School of Forestry and Environmental Studies, Yale University, New Haven, Connecticut

Abstract

AbstractEntrainment is critical to the development of the atmospheric convective boundary layer (CBL), but little is known about how entrainment is impacted by the aerosol radiative effect. An aerosol radiation transfer model is used in conjunction with large-eddy simulation (LES) to quantify the impact of aerosol shortwave radiative heating on entrainment and thermodynamics of an idealized dry CBL under aerosol-loading conditions. An entrainment equation is derived within the framework of a zero-order model (ZOM) with the aerosol radiative heating effect included; the equation is then examined against the LES outputs for varying aerosol optical depths (AODs) and free-atmosphere stratification scenarios. The results show that the heat flux profiles become more nonlinear in shape as compared to the case of the clean (no aerosol pollution) CBL, with the degree of nonlinearity being highly dependent on the AOD of the layer for the given type of radiation-absorbing aerosols. As AOD increases, less solar radiation reaches the surface and thus the surface heat flux becomes smaller, and both actual (LES) and ZOM-derived entrainment flux ratios decrease. This trend is opposite to the clean CBL where the LES-predicted flux ratios show an increasing trend with diminishing surface heat flux, while the ZOM-calculated flux ratio remains constant. The modified dimensionless entrainment rate closely follows the −1 power law with a modified Richardson number. The study suggests that including the aerosol radiative effect may improve numerical air quality predictions for heavy-air-pollution events.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Priority Academic Program Development of Jiangsu Higher Education Institutions

Postgraduate Research and Practice Innovation Program of Jiangsu Province

Publisher

American Meteorological Society

Subject

Atmospheric Science

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