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Peak water limits to freshwater withdrawal and use

Peter H. Gleick and Meena Palaniappan
PNAS published ahead of print May 24, 2010 https://doi.org/10.1073/pnas.1004812107
Peter H. Gleick
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Meena Palaniappan
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  1. Contributed by Peter H. Gleick, April 8, 2010 (sent for review February 22, 2010)

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Abstract

Freshwater resources are fundamental for maintaining human health, agricultural production, economic activity as well as critical ecosystem functions. As populations and economies grow, new constraints on water resources are appearing, raising questions about limits to water availability. Such resource questions are not new. The specter of “peak oil”—a peaking and then decline in oil production—has long been predicted and debated. We present here a detailed assessment and definition of three concepts of “peak water”: peak renewable water, peak nonrenewable water, and peak ecological water. These concepts can help hydrologists, water managers, policy makers, and the public understand and manage different water systems more effectively and sustainably. Peak renewable water applies where flow constraints limit total water availability over time. Peak nonrenewable water is observable in groundwater systems where production rates substantially exceed natural recharge rates and where overpumping or contamination leads to a peak of production followed by a decline, similar to more traditional peak-oil curves. Peak “ecological” water is defined as the point beyond which the total costs of ecological disruptions and damages exceed the total value provided by human use of that water. Despite uncertainties in quantifying many of these costs and benefits in consistent ways, more and more watersheds appear to have already passed the point of peak water. Applying these concepts can help shift the way freshwater resources are managed toward more productive, equitable, efficient, and sustainable use.

  • surface water
  • water use
  • sustainable water management

Footnotes

  • 1To whom correspondence should be addressed. E-mail: pgleick{at}pipeline.com.
  • Author contributions: P.H.G. designed research; P.H.G. and M.P. performed research; P.H.G. and M.P. contributed new reagents/analytic tools; P.H.G. and M.P. analyzed data; and P.H.G. and M.P. wrote the paper.

  • This contribution is part of the special series of Inaugural Articles by members of the National Academy of Sciences elected in 2006.

  • The authors declare no conflict of interest.

  • *Due to the law of conservation of energy, energy is never consumed—simply converted to another form. But in this case, the use of oil converts concentrated, high-quality energy into low-quality, unusable waste heat, effectively “consuming” the oil.

  • †Assuming a price equivalent to what industry and urban users pay for high-quality reliable municipal supplies.

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    Peak water limits to freshwater withdrawal and use
    Peter H. Gleick, Meena Palaniappan
    Proceedings of the National Academy of Sciences May 2010, DOI: 10.1073/pnas.1004812107

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    Peak water limits to freshwater withdrawal and use
    Peter H. Gleick, Meena Palaniappan
    Proceedings of the National Academy of Sciences May 2010, DOI: 10.1073/pnas.1004812107
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