Equivalent Black Carbon Aerosol Properties and Their Relationship with the Heating Season in Urban Environments
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Region
2.2. Data Collection and Processing
2.3. Analyzing Methods
3. Results
3.1. EBC Variation Trends
3.2. Correlation between Multichannel EBC and Atmospheric Pollutants
3.3. Correlation between Multichannel EBC and Atmospheric Pollutants
3.4. Liquid/Solid Source Analysis and Implications for Brown Carbon
3.5. Analysis of Contribution of Potential Sources
4. Discussion
4.1. Reasons of Changes in EBC Concentrations during the Heating and Nonheating Seasons
4.2. Reasons of EBC Sources during the Heating and Nonheating Seasons
4.3. Difference between EBC and BrC in the Heating and Nonheating Seasons
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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7-Wavelength EBC | CO | PM2.5 | PM10 | SO2 | NO2 | O3 |
---|---|---|---|---|---|---|
EBC370 | 0.451 ** | 0.572 ** | 0.524 ** | 0.208 ** | 0.383 ** | −0.191 ** |
EBC470 | 0.482 ** | 0.577 ** | 0.530 ** | 0.217 ** | 0.388 ** | −0.194 ** |
EBC520 | 0.487 ** | 0.574 ** | 0.527 ** | 0.214 ** | 0.385 ** | −0.195 ** |
EBC590 | 0.489 ** | 0.571 ** | 0.522 ** | 0.211 ** | 0.383 ** | −0.197 ** |
EBC660 | 0.490 ** | 0.568 ** | 0.520 ** | 0.209 ** | 0.380 ** | −0.197 ** |
EBC880 | 0.491 ** | 0.561 ** | 0.512 ** | 0.202 ** | 0.376 ** | −0.200 ** |
EBC950 | 0.489 ** | 0.555 ** | 0.507 ** | 0.197 ** | 0.373 ** | −0.200 ** |
Season | Minimum | Maximum | Average | Standard Deviation |
---|---|---|---|---|
Heating season | 0.177 | 1.838 | 1.106 | 0.277 |
Nonheating season | 0.533 | 1.026 | 1.071 | 0.262 |
Study Zone | Spring | Summer | Autumn | Winter |
---|---|---|---|---|
Beijing | 23% | 13% | 24% | 35% |
Taihu | 7% | 3% | 13% | 16% |
Lanzhou | 2% | 5% | 23% | 20% |
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Chen, W.; Song, G.; Zhao, H.; Sun, S.; Wu, Y. Equivalent Black Carbon Aerosol Properties and Their Relationship with the Heating Season in Urban Environments. Atmosphere 2021, 12, 1314. https://doi.org/10.3390/atmos12101314
Chen W, Song G, Zhao H, Sun S, Wu Y. Equivalent Black Carbon Aerosol Properties and Their Relationship with the Heating Season in Urban Environments. Atmosphere. 2021; 12(10):1314. https://doi.org/10.3390/atmos12101314
Chicago/Turabian StyleChen, Wei, Ge Song, Haimeng Zhao, Shanlin Sun, and Yi Wu. 2021. "Equivalent Black Carbon Aerosol Properties and Their Relationship with the Heating Season in Urban Environments" Atmosphere 12, no. 10: 1314. https://doi.org/10.3390/atmos12101314
APA StyleChen, W., Song, G., Zhao, H., Sun, S., & Wu, Y. (2021). Equivalent Black Carbon Aerosol Properties and Their Relationship with the Heating Season in Urban Environments. Atmosphere, 12(10), 1314. https://doi.org/10.3390/atmos12101314