• Journal of Atmospheric and Environmental Optics
  • Vol. 17, Issue 6, 655 (2022)
Yonglin SHEN1、*, Changmin JIANG2, Zemin XIAO2, Ling YAO3, and Kai QIN4
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
  • 4[in Chinese]
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    DOI: 10.3969/j.issn.1673-6141.2022.06.006 Cite this Article
    SHEN Yonglin, JIANG Changmin, XIAO Zemin, YAO Ling, QIN Kai. Remote sensing emission inventory of field-level open biomass burning NO x of China[J]. Journal of Atmospheric and Environmental Optics, 2022, 17(6): 655 Copy Citation Text show less
    References

    [1] Gao C, Zhang C, Yu S Q. Temporal and spatial variation for vertical column density of tropospheric NO 2 over the Yangtze River delta from 2005 to 2013 [J]. Journal of Zhejiang A&F University , 2015, 32(5): 691-700.

    [2] You Z Q, Wei P, Qiu X H, et al . Spatial and temporal variation of vertical column density of tropospheric NO 2 over the Beijing-Tianjin-Hebei region based on satellite observation during 2005-2015 [J]. Environmental Science Research , 2016, 29(10): 1400-1407.

    [3] Jang M, Kamens R M. Characterization of secondary aerosol from the photooxidation of toluene in the presence of NO x and 1-propene [J]. Environmental Science & Technology , 2001, 35(18): 3626-3639.

    [4] Gao J H, Zhu B, Wang Y Z, et al . Distribution and long-term variation of tropospheric NO 2 over China during 2005 to 2013 [J]. China Environmental Science , 2015, 35(8): 2307-2318.

    [5] Wang S X, Zhang C Y. Spatial and temporal distribution of air pollutant emissions from open burning of crop residues in China [J]. Sciencepaper Online , 2008, 3(5): 329-333.

    [6] Zhang J, Li A, Xie P H, et al . Spatiotemporal variation characteristics of NO 2 tropospheric column concentration over Chinese central region based on OMI data during 2007-2014 [J]. Journal of Atmospheric and Environmental Optics , 2016, 11(4): 288-298.

    [7] Zhang H, Ye X, Cheng T, et al . A laboratory study of agricultural crop residue combustion in China: Emission factors and emission inventory [J]. Atmospheric Environment , 2008, 42(36): 8432-8441.

    [8] Huang X, Li M, Li J, et al . A high-resolution emission inventory of crop burning in fields in China based on MODIS Thermal Anomalies/Fire products [J]. Atmospheric Environment , 2012, 50: 9-15.

    [9] Liu M, Song Y, Yao H, et al . Estimating emissions from agricultural fires in the North China Plain based on MODIS fire radiative power [J]. Atmospheric Environment , 2015, 112: 326-334.

    [10] Li J, Li Y, Bo Y, et al . High-resolution historical emission inventories of crop residue burning in fields in China for the period 1990-2013 [J]. Atmospheric Environment , 2016, 138: 152-161.

    [11] Yang Y J, Fu Y F, Wu B W, et al . Impacts of agricultural fire on aerosol distribution over east China during summer harvest time [J]. Journal of Atmospheric and Environmental Optics , 2013, 8(4): 241-252.

    [12] Seiler W, Crutzen P J. Estimates of gross and net fluxes of carbon between the biosphere and the atmosphere from biomass burning [J]. Climatic change , 1980, 2(3): 207-247.

    [13] Palumbo I, Grégoire J M, Boschetti L, et al . Fire regimes in protected areas of sub-Saharan Africa, derived from the GBA2000 dataset [C]. Innovative concepts and methods in fire danger estimation, 4th workshop on Remote sensing and GIS applications to forest fire management. EARSEL. Ghent . 2003.

    [14] Randerson J T, Chen Y, van der Werf G R, et al . Global burned area and biomass burning emissions from small fires [J]. Journal of Geophysical Research: Biogeosciences , 2012, 117: G04012.

    [15] Randerson J T, van der Werf G R, Giglio L, et al . Global fire emissions database, version 4.1 (GFEDv4) [DS]. ORNL DAAC, Oak Ridge, Tennessee, USA. 2008.

    [16] Kaufman Y J, Justice C O, Flynn L P, et al . Potential global fire monitoring from EOS-MODIS [J]. Journal of Geophysical Research: Atmospheres , 1998, 103(D24): 32215-32238.

    [17] Vermote E, Ellicott E, Dubovik O, et al . An approach to estimate global biomass burning emissions of organic and black carbon from MODIS fire radiative power [J]. Journal of Geophysical Research: Atmospheres , 2009, 114: D18205.

    [18] Ellicott E, Vermote E, Giglio L, et al . Estimating biomass consumed from fire using MODIS FRE [J]. Geophysical Research Letters , 2009, 36: L13401.

    [19] Wu J, Kong S, Wu F, et al . Estimating the open biomass burning emissions in central and eastern China from 2003 to 2015 based on satellite observation [J]. Atmospheric Chemistry and Physics , 2018, 18(16): 11623-11646.

    [20] Rafee S A A, Martins L D, Kawashima A B, et al . Contributions of mobile, stationary and biogenic sources to air pollution in the Amazon rainforest: A numerical study with the WRF-Chem model [J]. Atmospheric Chemistry and Physics , 2017, 17(12):7977-7995.

    [21] Freeborn P H, Wooster M J, Roberts G. Addressing the spatiotemporal sampling design of MODIS to provide estimates of the fire radiative energy emitted from Africa [J]. Remote Sensing of Environment , 2011, 115(2): 475-489.

    [22] Vadrevu K P, Csiszar I, Ellicott E, et al . Hotspot analysis of vegetation fires and intensity in the Indian region [J]. IEEE Journal of selected topics in applied Earth Observations and Remote Sensing , 2012, 6(1): 224-238.

    [23] Zhang J, Smith K R, Ma Y, et al . Greenhouse gases and other airborne pollutants from household stoves in China: A database for emission factors [J]. Atmospheric Environment , 2000, 34(26): 4537-4549.

    [24] Li X, Wang S, Duan L, et al . Particulate and trace gas emissions from open burning of wheat straw and corn stover in China [J]. Environmental science & technology , 2007, 41(17): 6052-6058.

    [25] Cao G L, Zhang X Y, Gong S L, et al . Investigation on emission factors of particulate matter and gaseous pollutants from crop residue burning [J]. Journal of Environmental Sciences , 2008, 20(1): 50-55.

    [26] Zhang Y, Shao M, Lin Y, et al . Emission inventory of carbonaceous pollutants from biomass burning in the Pearl River Delta Region, China [J]. Atmospheric environment , 2013, 76: 189-199.

    [27] Tang X B, Huang C, Lou S R, et al . Emission factors and PM chemical composition study of biomass burning in the Yangtze River Delta region [J]. Environmental Science , 2014, 35(5): 1623-1632.

    [28] Li J F, Song Y, Li M M, et al . Estimating air pollutants emissions from open burning of crop residues in Jianghan Plain [J]. Acta Scientiarum Naturalium Universitatis Pekinensis , 2015, 51(4): 647-656.

    [29] He M, Wang X R, Han L, et al . Emission inventory of crop residues field burning and its temporal and spatial distribution in Sichuan province [J]. Environmental Science , 2015, 36(4): 1208-1216.

    [30] Guan Y, Chen G, Cheng Z, et al . Air pollutant emissions from straw open burning: A case study in Tianjin [J]. Atmospheric environment , 2017, 171: 155-164.

    [31] Wu J, Kong S, Wu F, et al . The moving of high emission for biomass burning in China: View from multi-year emission estimation and human-driven forces [J]. Environment International , 2020, 142: 105812.

    [32] Wooster M J, Roberts G, Perry G L W, et al . Retrieval of biomass combustion rates and totals from fire radiative power observations: FRP derivation and calibration relationships between biomass consumption and fire radiative energy release [J]. Journal of Geophysical Research: Atmospheres , 2005, 110: D24311.

    [33] Meng Z T, Li G X. The Spatio-temporal evolution of China ′ s grain production and demand balance: from the perspectives of grain use and provincial level [J]. Research of Agricultural Modernization , 2020, 41(6): 928-936.

    [34] Kim D, Cho J, Hong S, et al . First retrieval of fire radiative power from COMS data using the mid-infrared radiance method [J]. Remote Sensing Letters , 2017, 8(2): 116-125.

    [35] Peng L Q, Zhang Q, He K B. Emissions inventory of atmospheric pollutants from open burning of crop residues in China based on a national questionnaire [J]. Research Of Environmental Sciences , 2016, 29(8): 1109-1118.

    [36] Zhang X H. High-resolution Characteristics of Air Pollutant Emissions from Crop Residue Burning in China [D]. Nanjing: Nanjing University, 2019.

    [37] Skamarock W C, Klemp J B, Dudhia J, et al . A description of the advanced research WRF version 3(NCAR/TN-475+STR) [R]. NCAR Technical Note, Boulder, Colorado, USA: National Center for Atmospheric Research. 2008.

    SHEN Yonglin, JIANG Changmin, XIAO Zemin, YAO Ling, QIN Kai. Remote sensing emission inventory of field-level open biomass burning NO x of China[J]. Journal of Atmospheric and Environmental Optics, 2022, 17(6): 655
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