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Changes of time mean state and variability of hydrology in response to a doubling and quadrupling of CO2

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  • Published: 11 November 2009
  • Volume 102, pages 651–670, (2010)
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Climatic Change Aims and scope Submit manuscript
Changes of time mean state and variability of hydrology in response to a doubling and quadrupling of CO2
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  • Richard T. Wetherald1 
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Abstract

This paper examines the subject of hydrologic variability and its changes in two separate integrations of a coupled ocean-atmosphere general circulation model developed at the Geophysical Fluid Dynamics Laboratory/NOAA assuming a 1% per year increase to a doubling and quadrupling of CO2, respectively. Changes in time mean state and variability of precipitation, runoff and soil moisture are evaluated using monthly and seasonal mean data derived from these integrations. Various statistical tests are then performed on the resulting time mean and variability changes. The patterns of hydrologic change for these three quantities are similar to those obtained from previous studies. In northern middle to higher latitudes for the time means, the changes include increases in monthly mean precipitation, increases in monthly mean runoff during the fall, winter and spring seasons and decreases of monthly mean soil moisture during summer. Many of these changes are found to be statistically significant at the 5% significance level for both the time mean and variability especially for the results where CO2 is quadrupled such as monthly mean precipitation. Significant changes also include increases of runoff variability during spring, winter and spring and increases of soil moisture variability during the summer season. These results support statements made in previous IPCC reports that increasing greenhouse gases can lead to more severe and frequent floods and droughts depending upon season and latitude. This study also indicates that the approaches to equilibrium of these two integrations, and the resulting hydrologic changes, take place over time scales of hundreds of years in agreement with several previous investigations.

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Authors and Affiliations

  1. Geophysical Fluid Dynamics Laboratory (GFDL), NOAA, Princeton, NJ, 08542, USA

    Richard T. Wetherald

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  1. Richard T. Wetherald
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Correspondence to Richard T. Wetherald.

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Open Access This is an open access article distributed under the terms of the Creative Commons Attribution Noncommercial License (https://creativecommons.org/licenses/by-nc/2.0), which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.

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Wetherald, R.T. Changes of time mean state and variability of hydrology in response to a doubling and quadrupling of CO2 . Climatic Change 102, 651–670 (2010). https://doi.org/10.1007/s10584-009-9701-4

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  • Received: 21 November 2008

  • Accepted: 27 August 2009

  • Published: 11 November 2009

  • Issue Date: October 2010

  • DOI: https://doi.org/10.1007/s10584-009-9701-4

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Keywords

  • Precipitation Rate
  • Geophysical Fluid Dynamics Laboratory
  • Greenhouse Warming
  • Variance Time Series
  • Soil Moisture Variability
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