Quantifying Contributions of Factors and Their Interactions to Aerosol Acidity with a Multiple-Linear-Regression-Based Framework: A Case Study in the Pearl River Delta, China

Author:

Ling Hong1ORCID,Deng Mingqi1,Zhang Qi2,Xu Lei3,Su Shuzhen4,Li Xihua4,Yang Liming5,Mao Jingying6,Jia Shiguo17

Affiliation:

1. Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), School of Atmospheric Sciences, Sun Yat-sen University, Zhuhai 519082, China

2. Tianjin Academy of Eco-Environmental Sciences, Tianjin 300191, China

3. Appraisal Center for Environment and Engineering, Ministry of Ecology and Environment, Beijing 100041, China

4. Guangdong Dongguan Ecological Environment Monitoring Station, Dongguan 523009, China

5. Department of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 117576, Singapore

6. Scientific Research Academy of Guangxi Environmental Protection, Nanning 530022, China

7. Guangdong Provincial Field Observation and Research Station for Climate Environment and Air Quality Change in the Pearl River Estuary, Guangzhou 510275, China

Abstract

This study presents an approach using multiple linear regression to quantify the impact of meteorological parameters and chemical species on aerosol pH variance in an urban setting in the Pearl River Delta, China. Additionally, it assesses the contributions of interactions among these factors to the variance in pH. The analysis successfully explains over 96% of the pH variance, attributing 85.8% to the original variables and 6.7% to bivariate interactions, with further contributions of 2.3% and 1.0% from trivariate and quadrivariate interactions, respectively. Our results highlight that meteorological factors, particularly temperature and humidity, are more influential than chemical components in affecting aerosol pH variance. Temperature alone accounts for 37.3% of the variance, while humidity contributes approximately 20%. On the chemical front, sulfate and ammonium are the most significant contributors, adding 14.3% and 9.1% to the pH variance, respectively. In the realm of bivariate interactions, the interplay between meteorological parameters and chemical components, especially the TNO3–RH pair, is exceptionally impactful, constituting 58.1% of the total contribution from interactions. In summary, this study illuminates the factors affecting aerosol pH variance and their interplay, suggesting the integration of statistical methods with thermodynamic models for enhanced understanding of aerosol acidity dynamics in the future.

Funder

National Natural Science Foundation of China

Science and Technology Projects in Guangzhou

Natural Science Foundation of Guangxi Province

Guangdong Basic and Applied Basic Research Fund

Publisher

MDPI AG

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