• Journal of Atmospheric and Environmental Optics
  • Vol. 17, Issue 6, 679 (2022)
Yizhen JIA1、*, Minghui TAO1, Sijia DING1, Hangyu LIU1, Mingyu ZENG1, and Liangfu CHEN2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: 10.3969/j.issn.1673-6141.2022.06.008 Cite this Article
    JIA Yizhen, TAO Minghui, DING Sijia, LIU Hangyu, ZENG Mingyu, CHEN Liangfu. Spatial and temporal distribution of XCO 2 and XCH 4 in China based on satellite remote sensing[J]. Journal of Atmospheric and Environmental Optics, 2022, 17(6): 679 Copy Citation Text show less
    References

    [1] IPCC. Climate change 2021: The physical science basis [R]. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change, 2021.

    [2] Etheridge D M, Steele L P, Langenfelds R L, et al . Natural and anthropogenic changes in atmospheric CO 2 over the last 1000 years from air in Antarctic ice and firn [J]. Journal of Geophysical Research , 1996, 101: 4115-4128.

    [3] Etminan M, Myhre G, Highwood E J, et al . Radiative forcing of carbon dioxide, methane, and nitrous oxide: A significant revision of the methane radiative forcing [J]. Geophysical Research Letters , 2016, 43(24): 12614-12623.

    [4] Prather M J, Holmes C D, Hsu J. Reactive greenhouse gas scenarios: Systematic exploration of uncertainties and the role of atmospheric chemistry [J]. Geophysical Research Letters , 2012, 39(9): L09803.

    [5] Liu D. A Study on the Influencing Factors of Individual’s Willingness to Pay for Carbon Neutrality [D]. Wuhan: Wuhan University, 2019.

    [6] O ′ dell C W, Eldering A, Wennberg P O, et al . Improved retrievals of carbon dioxide from Orbiting Carbon Observatory-2 with the version 8 ACOS algorithm [J]. Atmospheric Measurement Techniques , 2018, 11(12): 6539-6576.

    [7] Chevallier F, Palmer P I, Feng L, et al . Toward robust and consistent regional CO 2 flux estimates from in situ and spaceborne measurements of atmospheric CO 2 [J]. Geophysical Research Letters , 2014, 41(3): 1065-1070.

    [8] Wunch D, Toon G C, Blavier J F L, et al . The total carbon column observing network [J]. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences , 2011, 369(1943): 2087-2112.

    [9] Mo L, Wu Z C, Zhang Y. Spatial and temporal variations of XCO 2 in China and its influencing factors analysis [J]. China Environmental Science , 2021, 41(6): 2562-2570.

    [10] Xia L J, Liu L X, Li B Z, et al . Spatial and temporal distribution characteristics of atmospheric CO 2 in central China [J]. China Environmental Science , 2018, 38(8): 2811-2819.

    [11] Wu C J, Lei, L P, ZengZ C. Spatio-temporal analysis of differences among atmospheric CO 2 concentrations retrieved from different satellite observations [J]. Journal of the University of Chinese Academy of Sciences , 2019, 36(3): 331-337.

    [12] Liu D D, Huang Y B, Cao Z S, et al . Analysis of total columns of greenhouse gas based on direct observation and comparison with satellite data in Hefei [J]. Acta Photonica Sinica , 2020, 49(3): 165-174.

    [13] Bie N. Spatio-temporal Patterns and Uncertainty Analysis of Satellite Retrieved Atmospheric CO 2 Columns in China [D]. Beijing: Institute of Remote Sensing and Digital Earth, Chinese Academy of Sciences, 2018.

    [14] Taylor T E, O ′ dell C W, Crisp D, et al . An 11-year record of XCO 2 estimates derived from GOSAT measurements using the NASA ACOS version 9 retrieval algorithm [J]. Earth System Science Data , 2022, 14(1): 325-360.

    [15] Butz A, Guerlet S, Hasekamp O, et al . Toward accurate CO 2 and CH 4 observations from GOSAT [J]. Geophysical Research Letters , 2011, 38(14) : L14812.

    [16] ODell C, Eldering A, Gunson M, et al . Improvements in XCO 2 accuracy from OCO-2 with the latest ACOS v10 product [C]. EGU General Assembly Conference Abstracts , April 30, 2021, Online. 2021: EGU21-10484.

    [17] OCO-2/OCO-3 Science Team, Abhishek Chatterjee, Vivienne Payne. OCO-3 level 2 bias-corrected XCO 2 and other select fields from the full-physics retrieval aggregated as daily files, retrospective processing v10.4r [DS]. Greenbelt, MD, USA, Goddard Earth Sciences Data and Information Services Center (GES DISC), 2022.

    [18] Parker R, Boesch H, Cogan A, et al . Methane observations from the Greenhouse Gases Observing SATellite: Comparison to ground-based TCCON data and model calculations [J]. Geophysical Research Letters , 2011, 38(15) : L15807.

    [19] Butz A, Hasekamp O P, Frankenberg C, et al . CH 4 retrievals from space-based solar backscatter measurements: Performance evaluation against simulated aerosol and cirrus loaded scenes [J]. Journal of Geophysical Research: Atmospheres , 2010,115: D24302.

    [20] Wu H. Influence of Cloud and Aerosol in Atmospheric CO 2 Inversion and Its Correction Method [D]. Hefei: University of Science and Technology of China, 2019.

    [21] Chen L F, Zhang Y, Zou M M, et al . Overview of atmospheric CO 2 remote sensing from space [J]. Journal of Remote Sensing , 2015, 19(1): 1-11.

    [22] Wang Z. Analysis of Atmospheric CO 2 Characteristics and Source and Sink in China [D]. Xi ′ an: Chang ′ an University, 2019.

    [23] Tao M, Chen L, Wang J, et al . Characterization of dust activation and their prevailing transport over East Asia based on multi-satellite observations [J]. Atmospheric research , 2022, 265: 105886.

    [24] Yang D X, Liu Y, Cai Z N, et al . The spatial and temporal distribution of carbon dioxide over China based on GOSAT observations [J]. Chinese Journal of Atmospheric Sciences , 2016, 40(3): 541-550.

    [25] Zhang S H, Xie B, Zhang H, et al . The spatial-temporal distribution of CH 4 over globe and East Asia [J]. China Environmental Science , 2018, 38(12): 4401-4408.

    JIA Yizhen, TAO Minghui, DING Sijia, LIU Hangyu, ZENG Mingyu, CHEN Liangfu. Spatial and temporal distribution of XCO 2 and XCH 4 in China based on satellite remote sensing[J]. Journal of Atmospheric and Environmental Optics, 2022, 17(6): 679
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