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Export of Dissolved Organic Carbon from the Source Region of Yangtze River in the Tibetan Plateau

Author

Listed:
  • Xiaoni You

    (College of Resources and Environmental Engineering, Tianshui Normal University, Tianshui 741001, China)

  • Xiangying Li

    (Shaanxi Key Laboratory of Earth Surface System and Environmental Carrying Capacity, Northwest University, Xi’an 710127, China
    College of Urban and Environmental Sciences, Northwest University, Xi’an 710127, China)

  • Mika Sillanpää

    (Department of Chemical Engineering, School of Mining, Metallurgy and Chemical Engineering, University of Johannesburg, Doornfontein 17011, South Africa
    Department of Biological and Chemical Engineering, Aarhus University, 8000 Aarhus, Denmark)

  • Rong Wang

    (College of Resources and Environmental Engineering, Tianshui Normal University, Tianshui 741001, China)

  • Chengyong Wu

    (College of Resources and Environmental Engineering, Tianshui Normal University, Tianshui 741001, China)

  • Qiangqiang Xu

    (College of Resources and Environmental Engineering, Tianshui Normal University, Tianshui 741001, China)

Abstract

The carbon release and transport in rivers are expected to increase in a warming climate with enhanced melting. We present a continuous dataset of DOC in the river, precipitation, and groundwater, including air temperature, discharge, and precipitation in the source region of the Yangtze River (SRYR). Our study shows that the average concentrations of DOC in the three end-members are characterized as the sequence of groundwater > precipitation > river, which is related to the water volume, cycle period, and river flow speed. The seasonality of DOC in the river is observed as the obvious bimodal structure at Tuotuohe (TTH) and Zhimenda (ZMD) gauging stations. The highest concentration appears in July (2.4 mg L −1 at TTH and 2.1 mg L −1 at ZMD) and the secondary high value (2.2 mg L −1 at TTH 1.9 mg L −1 at ZMD) emerges from August to September. It is estimated that 459 and 6751 tons of DOC are transported by the river at TTH and ZMD, respectively. Although the wet deposition flux of DOC is nearly ten times higher than the river flux, riverine DOC still primarily originates from soil erosion of the basin rather than precipitation settlement. Riverine DOC fluxes are positively correlated with discharge, suggesting DOC fluxes are likely to increase in the future. Our findings highlight that permafrost degradation and glacier retreat have a great effect on DOC concentration in rivers and may become increasingly important for regional biogeochemical cycles.

Suggested Citation

  • Xiaoni You & Xiangying Li & Mika Sillanpää & Rong Wang & Chengyong Wu & Qiangqiang Xu, 2022. "Export of Dissolved Organic Carbon from the Source Region of Yangtze River in the Tibetan Plateau," Sustainability, MDPI, vol. 14(4), pages 1-17, February.
  • Handle: RePEc:gam:jsusta:v:14:y:2022:i:4:p:2441-:d:754162
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    References listed on IDEAS

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    1. Teng Li & Yan Bai & Xianqiang He & Xiaoyan Chen & Chen-Tung Arthur Chen & Bangyi Tao & Delu Pan & Xuan Zhang, 2018. "The Relationship between POC Export Efficiency and Primary Production: Opposite on the Shelf and Basin of the Northern South China Sea," Sustainability, MDPI, vol. 10(10), pages 1-22, October.
    2. Valier Galy & Bernhard Peucker-Ehrenbrink & Timothy Eglinton, 2015. "Global carbon export from the terrestrial biosphere controlled by erosion," Nature, Nature, vol. 521(7551), pages 204-207, May.
    3. B. Teufel & L. Sushama, 2019. "Abrupt changes across the Arctic permafrost region endanger northern development," Nature Climate Change, Nature, vol. 9(11), pages 858-862, November.
    4. Donald T. Monteith & John L. Stoddard & Christopher D. Evans & Heleen A. de Wit & Martin Forsius & Tore Høgåsen & Anders Wilander & Brit Lisa Skjelkvåle & Dean S. Jeffries & Jussi Vuorenmaa & Bill Kel, 2007. "Dissolved organic carbon trends resulting from changes in atmospheric deposition chemistry," Nature, Nature, vol. 450(7169), pages 537-540, November.
    5. E. A. G. Schuur & A. D. McGuire & C. Schädel & G. Grosse & J. W. Harden & D. J. Hayes & G. Hugelius & C. D. Koven & P. Kuhry & D. M. Lawrence & S. M. Natali & D. Olefeldt & V. E. Romanovsky & K. Schae, 2015. "Climate change and the permafrost carbon feedback," Nature, Nature, vol. 520(7546), pages 171-179, April.
    6. Charissa M. Ferrera & Gil S. Jacinto & Chen-Tung Arthur Chen & Hon-Kit Lui, 2018. "Organic Carbon Concentrations in High- and Low-Productivity Areas of the Sulu Sea," Sustainability, MDPI, vol. 10(6), pages 1-19, June.
    7. Hao Zheng & Zhishen Yan & Jianfang Chen & Haiyan Jin & Chen-Tung Arthur Chen & Maokun Liu & Zupeng Yan & Zhongqiang Ji, 2018. "Seasonal Variations of Dissolved Organic Matter in the East China Sea Using EEM-PARAFAC and Implications for Carbon and Nutrient Cycling," Sustainability, MDPI, vol. 10(5), pages 1-17, May.
    8. Di Zhao & Junyu Dong & Shuping Ji & Miansong Huang & Quan Quan & Jian Liu, 2020. "Effects of Contemporary Land Use Types and Conversions from Wetland to Paddy Field or Dry Land on Soil Organic Carbon Fractions," Sustainability, MDPI, vol. 12(5), pages 1-15, March.
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    1. Qiao Xu & Yan Wei & Xinfeng Zhao & Hailiang Xu, 2022. "Dynamics of Soil Carbon Fractions and Carbon Stability in Relation to Grassland Degradation in Xinjiang, Northwest China," Sustainability, MDPI, vol. 14(10), pages 1-11, May.

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