The blue water footprint of electricity from hydropower

Author:

Mekonnen M. M.,Hoekstra A. Y.

Abstract

Abstract. Hydropower accounts for about 16% of the world's electricity supply. It has been debated whether hydroelectric generation is merely an in-stream water user or whether it also consumes water. In this paper we provide scientific support for the argument that hydroelectric generation is in most cases a significant water consumer. The study assesses the blue water footprint of hydroelectricity – the water evaporated from manmade reservoirs to produce electric energy – for 35 selected sites. The aggregated blue water footprint of the selected hydropower plants is 90 Gm3 yr−1, which is equivalent to 10% of the blue water footprint of global crop production in the year 2000. The total blue water footprint of hydroelectric generation in the world must be considerably larger if one considers the fact that this study covers only 8% of the global installed hydroelectric capacity. Hydroelectric generation is thus a significant water consumer. The average water footprint of the selected hydropower plants is 68 m3 GJ−1. Great differences in water footprint among hydropower plants exist, due to differences in climate in the places where the plants are situated, but more importantly as a result of large differences in the area flooded per unit of installed hydroelectric capacity. We recommend that water footprint assessment is added as a component in evaluations of newly proposed hydropower plants as well as in the evaluation of existing hydroelectric dams, so that the consequences of the water footprint of hydroelectric generation on downstream environmental flows and other water users can be evaluated.

Publisher

Copernicus GmbH

Subject

General Earth and Planetary Sciences,General Engineering,General Environmental Science

Reference43 articles.

1. Aguilar, S., Louw, K., and Neville, K.: IHA World Congress Bulletin, International Institute for Sustainable Development (IISD) and International Hydropower Association (IHA), Issue {#}1, Vol. 139, No. 5, available at: www.iisd.ca/ymb/hydro/iha2011, 2011.

2. Berger, M. and Finkbeiner M.: Water footprinting: How to address water use in Life Cycle Assessment?, Sustainability, 2, 919–944, 2010.

3. Chao, B. F., Wu, Y. H., and Li, Y. S.: Impact of artificial reservoir water impoundment on global sea level, Science, 320, 212–214, 2008.

4. Cooley, H., Fulton, J., and Gleick, P.: Water for energy: Future water needs for electricity in the Intermountain West, Pacific Institute, Oakland, USA, 2011.

5. De Bruin, H. A. R.: Temperature and energy balance of a water reservoir determined from standard weather data of a land station, J. Hydrol., 59, 261–274, 1982.

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