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Articles

Spatial and temporal variability of open biomass burning in Northeast China from 2003 to 2017

2003–2017年东北露天生物质燃烧时空变化特征

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Pages 240-247 | Received 31 Oct 2019, Accepted 30 Dec 2019, Published online: 31 Mar 2020

References

  • Cao, F., S. C. Zhang, K. Kawamura, X. Liu, C. Yang, Z. Xu, M. Fan, et al. 2017. “Chemical Characteristics of Dicarboxylic Acids and Related Organic Compounds in PM2.5 During Biomass-burning and Non-biomass-burning Seasons at a Rural Site of Northeast China.” Environmental Pollution 231 (Pt 1): 654–662. doi:10.1016/j.envpol.2017.08.045.
  • Chen, D. M., J. M. C. Pereira, A. Masiero, and F. Pirotti. 2017a. “Mapping Fire Regimes in China Using MODIS Active Fire and Burned Area Data.” Applied Geography 85: 14–26. doi:10.1016/j.apgeog.2017.05.013.
  • Chen, J., C. Li, Z. Ristovski, A. Milic, Y. Gu, M. S. Islam, S. Wang, et al. 2017b. “A Review of Biomass Burning: Emissions and Impacts on Air Quality, Health and Climate in China.” The Science of the Total Environment 579: 1000–1034. doi:10.1016/j.scitotenv.2016.11.025.
  • Chen, W., D. Q. Tong, M. Dan, S. Zhang, X. Zhang, and Y. Pan. 2017c. “Typical Atmospheric Haze during Crop Harvest Season in Northeastern China: A Case in the Changchun Region.” Journal of Environmental Sciences (China) 54: 101–113. doi:10.1016/j.jes.2016.03.031.
  • Kaiser, J. W., A. Heil, M. O. Andreae, A. Benedetti, N. Chubarova, L. Jones, J. J. Morcrette, et al. 2012. “Biomass Burning Emissions Estimated with a Global Fire Assimilation System Based on Observed Fire Radiative Power.” Biogeosciences 9 (1): 527–554. doi:10.5194/bg-9-527-2012.
  • Ke, H. B., S. L. Gong, J. J. He, C. H. Zhou, L. Zhang, and Y. K. Zhou. 2019. “Spatial and Temporal Distribution of Open Bio-mass Burning in China from 2013 to 2017.” Atmospheric Environment 210: 156–165. doi:10.1016/j.atmosenv.2019.04.039.
  • Koppmann, R., K. von Czapiewski, and J. S. Reid. 2005. “A Review of Biomass Burning Emissions, Part I: Gaseous Emissions of Carbon Monoxide, Methane, Volatile Organic Compounds, and Nitrogen Containing Compounds.” Atmospheric Chemistry and Physics Discussions 5 (5): 10455–10516. doi:10.5194/acpd-5-10455-2005.
  • Ma, S. Q., W. W. Chen, S. C. Zhang, Q. S. Tong, Q. Y. Bao, and Z. T. Gao. 2017. “Characteristics and Cause Analysis of Heavy Haze in Changchun City in Northeast China.” Chinese Geographical Science 27 (6): 989–1002. doi:10.1007/s11769-017-0922-6.
  • Pfister, G. G., C. Wiedinmyer, and L. K. Emmons. 2008. “Impacts of the Fall 2007 California Wildfires on Surface Ozone: Integrating Local Observations with Global Model Simulations.” Geophysical Research Letters 35 (19): 19. doi:10.1029/2008gl034747.
  • Reid, J. S., R. Koppmann, T. F. Eck, and D. P. Eleuterio. 2005a. “A Review of Biomass Burning Emissions Part II: Intensive Physical Properties of Biomass Burning Particles.” Atmospheric Chemistry and Physics 5 (3): 799–825. doi:10.5194/acp-5-799-2005.
  • Reid, J. S., F. E. Thomas, S. A. Christopher, R. Koppmann, O. Dubovik, D. P. Eleuterio, B. N. Holben, E. A. Reid, and J. L. Zhang. 2005b. “A Review of Biomass Burning Emissions Part III: Intensive Optical Properties of Biomass Burning Particles.” Atmospheric Chemistry and Physics 5 (3): 827–849. doi:10.5194/acp-5-827-2005.
  • Wang, L. L., J. Y. Xin, X. R. Li, and Y. S. Wang. 2015. “The Variability of Biomass Burning and Its Influence on Regional Aerosol Properties during the Wheat Harvest Season in North China.” Atmospheric Research 157: 153–163. doi:10.1016/j.atmosres.2015.01.009.
  • Yang, T., A. Gbaguidi, P. Yan, W. Zhang, L. Zhu, X. Yao, Z. Wang, and H. Chen. 2017. “Model Elucidating the Sources and Formation Mechanisms of Severe Haze Pollution over Northeast Mega-city Cluster in China.” Environmental Pollution 230: 692–700. doi:10.1016/j.envpol.2017.06.007.
  • Yang, Y. R., X. G. Liu, Y. Qu, J. L. An, R. Jiang, Y. H. Zhang, Y. L. Sun, et al. 2015. “Characteristics and Formation Mechanism of Continuous Hazes in China: A Case Study during the Autumn of 2014 in the North China Plain.” Atmospheric Chemistry and Physics 15 (14): 8165–8178. doi:10.5194/acp-15-8165-2015.
  • Yokelson, R. J., J. G. Goode, D. E. Ward, R. A. Susott, R. E. Babbitt, D. D. Wade, I. Bertschi, D. W. T. Griffith, and W. M. Hao. 1999. “Emissions of Formaldehyde, Acetic Acid, Methanol, and Other Trace Gases from Biomass Fires in North Carolina Measured by Airborne Fourier Transform Infrared Spectroscopy.” Journal of Geophysical Research: Atmospheres 104 (D23): 30109–30125. doi:10.1029/1999jd900817.
  • Zhang, L. B., Y. Q. Liu, and L. Hao. 2016. “Contributions of Open Crop Straw Burning Emissions to PM2.5 Concentrations in China.” Environmental Research Letters 11 (1): 014014. doi:10.1088/1748-9326/11/1/014014.
  • Zhao, H. M., X. L. Zhang, S. C. Zhang, W. W. Chen, D. Tong, and A. J. Xiu. 2017. “Effects of Agricultural Biomass Burning on Regional Haze in China: A Review.” Atmosphere 8 (12): 88. doi:10.3390/atmos8050088.
  • Zhuang, Y., D. Chen, R. Li, Z. Chen, J. Cai, B. He, B. Gao, N. Cheng, and Y. Huang. 2018a. “Understanding the Influence of Crop Residue Burning on PM2.5 And PM10 Concentrations in China from 2013 to 2017 Using MODIS Data.” International Journal of Environmental Research and Public Health 15: 7. doi:10.3390/ijerph15071504.
  • Zhuang, Y., R. Y. Li, H. Yang, D. L. Chen, Z. Y. Chen, B. B. Gao, and B. He. 2018b. “Understanding Temporal and Spatial Distribution of Crop Residue Burning in China from 2003 to 2017 Using MODIS Data.” Remote Sensing 10 (3): 390. doi:10.3390/rs10030390.