The water footprint of bioenergy
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Open Access
- 23 June 2009
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 106 (25) , 10219-10223
- https://doi.org/10.1073/pnas.0812619106
Abstract
All energy scenarios show a shift toward an increased percentage of renewable energy sources, including biomass. This study gives an overview of water footprints (WFs) of bioenergy from 12 crops that currently contribute the most to global agricultural production: barley, cassava, maize, potato, rapeseed, rice, rye, sorghum, soybean, sugar beet, sugar cane, and wheat. In addition, this study includes jatropha, a suitable energy crop. Since climate and production circumstances differ among regions, calculations have been performed by country. The WF of bioelectricity is smaller than that of biofuels because it is more efficient to use total biomass (e.g., for electricity or heat) than a fraction of the crop (its sugar, starch, or oil content) for biofuel. The WF of bioethanol appears to be smaller than that of biodiesel. For electricity, sugar beet, maize, and sugar cane are the most favorable crops [50 m 3 /gigajoule (GJ)]. Rapeseed and jatropha, typical energy crops, are disadvantageous (400 m 3 /GJ). For ethanol, sugar beet, and potato (60 and 100 m 3 /GJ) are the most advantageous, followed by sugar cane (110 m 3 /GJ); sorghum (400 m 3 /GJ) is the most unfavorable. For biodiesel, soybean and rapeseed show to be the most favorable WF (400 m 3 /GJ); jatropha has an adverse WF (600 m 3 /GJ). When expressed per L, the WF ranges from 1,400 to 20,000 L of water per L of biofuel. If a shift toward a greater contribution of bioenergy to energy supply takes place, the results of this study can be used to select the crops and countries that produce bioenergy in the most water-efficient way.Keywords
This publication has 12 references indexed in Scilit:
- The water footprint of energy from biomass: A quantitative assessment and consequences of an increasing share of bio-energy in energy supplyEcological Economics, 2008
- Assessing the water challenge of a new green revolution in developing countriesProceedings of the National Academy of Sciences, 2007
- Renewable energy sources: Their global potential for the first-half of the 21st century at a global level: An integrated approachEnergy Policy, 2006
- Water footprints of nations: Water use by people as a function of their consumption patternWater Resources Management, 2006
- Integrated Assessment of Large-Scale Biofuel ProductionCritical Reviews in Plant Sciences, 2005
- Bioenergy and water—the implications of large-scale bioenergy production for water use and supplyGlobal Environmental Change, 2002
- Global Water Resources: Vulnerability from Climate Change and Population GrowthScience, 2000
- The human right to waterWater Policy, 1998
- Human Appropriation of Renewable Fresh WaterScience, 1996
- Jatropha seed oils for energyBiomass, 1985