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Quantification of human contribution to soil moisture-based terrestrial aridity

Author

Listed:
  • Yaoping Wang

    (University of Tennessee
    Oak Ridge National Laboratory)

  • Jiafu Mao

    (Oak Ridge National Laboratory)

  • Forrest M. Hoffman

    (Oak Ridge National Laboratory)

  • Céline J. W. Bonfils

    (Lawrence Livermore National Laboratory)

  • Hervé Douville

    (Université de Toulouse, Météo-France, CNRS)

  • Mingzhou Jin

    (University of Tennessee
    University of Tennessee)

  • Peter E. Thornton

    (Oak Ridge National Laboratory)

  • Daniel M. Ricciuto

    (Oak Ridge National Laboratory)

  • Xiaoying Shi

    (Oak Ridge National Laboratory)

  • Haishan Chen

    (Nanjing University of Information Science & Technology)

  • Stan D. Wullschleger

    (Oak Ridge National Laboratory)

  • Shilong Piao

    (Peking University)

  • Yongjiu Dai

    (Sun Yat-sen University)

Abstract

Current knowledge of the spatiotemporal patterns of changes in soil moisture-based terrestrial aridity has considerable uncertainty. Using Standardized Soil Moisture Index (SSI) calculated from multi-source merged data sets, we find widespread drying in the global midlatitudes, and wetting in the northern subtropics and in spring between 45°N–65°N, during 1971–2016. Formal detection and attribution analysis shows that human forcings, especially greenhouse gases, contribute significantly to the changes in 0–10 cm SSI during August–November, and 0–100 cm during September–April. We further develop and apply an emergent constraint method on the future SSI’s signal-to-noise (S/N) ratios and trends under the Shared Socioeconomic Pathway 5-8.5. The results show continued significant presence of human forcings and more rapid drying in 0–10 cm than 0–100 cm. Our findings highlight the predominant human contributions to spatiotemporally heterogenous terrestrial aridification, providing a basis for drought and flood risk management.

Suggested Citation

  • Yaoping Wang & Jiafu Mao & Forrest M. Hoffman & Céline J. W. Bonfils & Hervé Douville & Mingzhou Jin & Peter E. Thornton & Daniel M. Ricciuto & Xiaoying Shi & Haishan Chen & Stan D. Wullschleger & Shi, 2022. "Quantification of human contribution to soil moisture-based terrestrial aridity," Nature Communications, Nature, vol. 13(1), pages 1-11, December.
  • Handle: RePEc:nat:natcom:v:13:y:2022:i:1:d:10.1038_s41467-022-34071-5
    DOI: 10.1038/s41467-022-34071-5
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    References listed on IDEAS

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    1. Brigitte Mueller & Xuebin Zhang, 2016. "Causes of drying trends in northern hemispheric land areas in reconstructed soil moisture data," Climatic Change, Springer, vol. 134(1), pages 255-267, January.
    2. Aiguo Dai & Tianbao Zhao, 2017. "Uncertainties in historical changes and future projections of drought. Part I: estimates of historical drought changes," Climatic Change, Springer, vol. 144(3), pages 519-533, October.
    3. Laibao Liu & Lukas Gudmundsson & Mathias Hauser & Dahe Qin & Shuangcheng Li & Sonia I. Seneviratne, 2020. "Soil moisture dominates dryness stress on ecosystem production globally," Nature Communications, Nature, vol. 11(1), pages 1-9, December.
    4. Aiguo Dai, 2013. "Increasing drought under global warming in observations and models," Nature Climate Change, Nature, vol. 3(1), pages 52-58, January.
    5. Deepti Singh & Subimal Ghosh & Mathew K. Roxy & Sonali McDermid, 2019. "Indian summer monsoon: Extreme events, historical changes, and role of anthropogenic forcings," Wiley Interdisciplinary Reviews: Climate Change, John Wiley & Sons, vol. 10(2), March.
    6. Aiguo Dai, 2013. "Erratum: Increasing drought under global warming in observations and models," Nature Climate Change, Nature, vol. 3(2), pages 171-171, February.
    7. Daniel R. Schlaepfer & John B. Bradford & William K. Lauenroth & Seth M. Munson & Britta Tietjen & Sonia A. Hall & Scott D. Wilson & Michael C. Duniway & Gensuo Jia & David A. Pyke & Ariuntsetseg Lkha, 2017. "Climate change reduces extent of temperate drylands and intensifies drought in deep soils," Nature Communications, Nature, vol. 8(1), pages 1-9, April.
    8. Simon N. Wood, 2006. "Low-Rank Scale-Invariant Tensor Product Smooths for Generalized Additive Mixed Models," Biometrics, The International Biometric Society, vol. 62(4), pages 1025-1036, December.
    9. Alexis Berg & Kaighin A. McColl, 2021. "No projected global drylands expansion under greenhouse warming," Nature Climate Change, Nature, vol. 11(4), pages 331-337, April.
    10. Kate Marvel & Benjamin I. Cook & Céline J. W. Bonfils & Paul J. Durack & Jason E. Smerdon & A. Park Williams, 2019. "Twentieth-century hydroclimate changes consistent with human influence," Nature, Nature, vol. 569(7754), pages 59-65, May.
    11. Chonggang Xu & Nate G. McDowell & Rosie A. Fisher & Liang Wei & Sanna Sevanto & Bradley O. Christoffersen & Ensheng Weng & Richard S. Middleton, 2019. "Increasing impacts of extreme droughts on vegetation productivity under climate change," Nature Climate Change, Nature, vol. 9(12), pages 948-953, December.
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