Responses of global terrestrial water use efficiency to climate change and rising atmospheric CO2 concentration in the twenty-first century

  • Shufen Pan
  • , Guangsheng Chen
  • , Wei Ren
  • , Shree R.S. Dangal
  • , Kamaljit Banger
  • , Jia Yang
  • , Bo Tao
  • , Hanqin Tian

Producción científica: Articlerevisión exhaustiva

29 Citas (Scopus)

Resumen

Terrestrial ecosystems play a significant role in global carbon and water cycles because of the substantial amount of carbon assimilated through net primary production and large amount of water loss through evapotranspiration (ET). Using a process-based ecosystem model, we investigate the potential effects of climate change and rising atmospheric CO2 concentration on global terrestrial ecosystem water use efficiency (WUE) during the twenty-first century. Future climate change would reduce global WUE by 16.3% under high-emission climate change scenario (A2) and 2.2% under low-emission climate scenario (B1) during 2010–2099. However, the combination of rising atmospheric CO2 concentration and climate change would increase global WUE by 7.9% and 9.4% under A2 and B1 climate scenarios, respectively. This suggests that rising atmospheric CO2 concentration could ameliorate climate change-induced WUE decline. Future WUE would increase significantly at the high-latitude regions but decrease at the low-latitude regions under combined changes in climate and atmospheric CO2. The largest increase of WUE would occur in tundra and boreal needleleaf deciduous forest under the combined A2 climate and atmospheric CO2 scenario. More accurate prediction of WUE requires deeper understanding on the responses of ET to rising atmospheric CO2 concentrations and its interactions with climate.

Idioma originalEnglish
Páginas (desde-hasta)558-582
Número de páginas25
PublicaciónInternational Journal of Digital Earth
Volumen11
N.º6
DOI
EstadoPublished - jun 3 2018

Nota bibliográfica

Publisher Copyright:
© 2017 Informa UK Limited, trading as Taylor & Francis Group.

Financiación

This research was supported by National Science Foundation (NSF) Grants (1243232, 121036), Chinese Academy of Sciences STS Program (KFJ-STS-ZDTP-010-05). We thank the previous members in the Ecosystem Dynamics and Global Ecology (EDGE) Laboratory who made great contributions to the improvements and developments of the DLEM and associated geo-referenced data set in the past decades. We also appreciate the precious comments and suggestions from the reviewers. This research was supported by National Science Foundation (NSF) Grants (1243232, 121036), Chinese Academy of Sciences STS Program (KFJ-STS-ZDTP-010-05).

FinanciadoresNúmero del financiador
DLEM
National Science Foundation Arctic Social Science Program121036, 1243232
National Science Foundation Arctic Social Science Program
Chinese Academy of Sciences
National Aerospace Science Foundation of China
Chinese Academy of Sciences Key Technology Talent ProgramKFJ-STS-ZDTP-010-05
Chinese Academy of Sciences Key Technology Talent Program

    ODS de las Naciones Unidas

    Este resultado contribuye a los siguientes Objetivos de Desarrollo Sostenible

    1. Climate action
      Climate action
    2. Life on land
      Life on land

    ASJC Scopus subject areas

    • Software
    • Computer Science Applications
    • General Earth and Planetary Sciences

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