Characteristics of Atmospheric Volatile Organic Compounds and Photochemical Changes During an O3 Event in a County-Level City of Shaanxi Province, China

Author:

Zhang Shengxin,Tan Lichao,Xu Keke,Wang Dandan,Zhu Xinsheng

Funder

Special Funds for the Basic Research and Development Program in the Central Non-profit Research Institutesof China

Publisher

Springer Science and Business Media LLC

Subject

Pollution,Water Science and Technology,Ecological Modeling,Environmental Chemistry,Environmental Engineering

Reference43 articles.

1. Buzcu, B., & Fraser, M. P. (2006). Source identification and apportionment of volatile organic compounds in Houston, TX. Atmospheric Environment, 40(13), 2385–2400.

2. Cai, C., Geng, F., Tie, X., Yu, Q., & An, J. (2010). Characteristics and source apportionment of VOCs measured in Shanghai, China. Atmospheric Environment, 44(38), 5005–5014.

3. Chen, D., Zhou, L., Wang, C., Liu, H., Qiu, Y., Shi, G., Song, D., Tan, Q., & Yang, F. (2022). Characteristics of ambient volatile organic compounds during spring O3 pollution episode in Chengdu, China. Journal of Environmental Sciences-China, 114, 115–125.

4. Dodge, M. C., & Hogo, H. (1988). OZIPM-4 (Ozone Isopleth Plotting with Optional Mechanisms, Version 4) source code. Software (Technical Report: No. PB-88-221940/XAB). US Environmental Protection Agency. Atmospheric Research and Exposure Assessment Laboratory. https://www.osti.gov/biblio/6904038

5. Gery, M., & Crouse, R. (1991). User’s guide for executing OZIPR (Technical Report: No. PB-91-175877/XAB). US Environmental Protection Agency. Atmospheric Research and Exposure Assessment Laboratory. Advance online publication. https://gaftp.epa.gov/Air/aqmg/SCRAM/models/other/ozipr/ozipr.pdf

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