Abstract
AbstractIrrigation is a land management practice with major environmental impacts. However, global energy consumption and carbon emissions resulting from irrigation remain unknown. We assess the worldwide energy consumption and carbon emissions associated with irrigation, while also measuring the potential energy and carbon reductions achievable through the adoption of efficient and low-carbon irrigation practices. Currently, irrigation contributes 216 million metric tons of CO2 emissions and consumes 1896 petajoules of energy annually, representing 15% of greenhouse gas emissions and energy utilized in agricultural operations. Despite only 40% of irrigated agriculture relies on groundwater sources, groundwater pumping accounts for 89% of the total energy consumption in irrigation. Projections indicate that future expansion of irrigation could lead to a 28% increase in energy usage. Embracing highly efficient, low-carbon irrigation methods has the potential to cut energy consumption in half and reduce CO2 emissions by 90%. However, considering country-specific feasibility of mitigation options, global CO2 emissions may only see a 55% reduction. Our research offers comprehensive insights into the energy consumption and carbon emissions associated with irrigation, contributing valuable information that can guide assessments of the viability of irrigation in enhancing adaptive capacity within the agricultural sector.
Funder
National Natural Science Foundation of China
Publisher
Springer Science and Business Media LLC
Reference70 articles.
1. Gleick, P. H., Cooley, H., Morikawa, M., Morrison, J. & Cohen, M. J. The world’s water 2008-2009: The biennial report on freshwater resources. Available online at: https://islandpress.org/books/worlds-water-2008-2009#contents. Accessed 4th March 2023.
2. Portmann, F. T., Siebert, S. & Döll, P. MIRCA2000—Global monthly irrigated and rainfed crop areas around the year 2000: A new high‐resolution data set for agricultural and hydrological modeling. Glob. Biogeochem. Cycle. 24, GB1011 (2010).
3. Rosa, L. Adapting agriculture to climate change via sustainable irrigation: Biophysical potentials and feedbacks. Environ. Res. Lett. 17, 063008 (2022).
4. Rosa, L. et al. Potential for sustainable irrigation expansion in a 3 C warmer climate. Proc. Natl. Acad. Sci 117, 29526–29534 (2020).
5. Liu, Y. et al. Global and regional evaluation of energy for water. Environ. Sci. Technol. 50, 9736–9745 (2016).
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