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Complex Policy Mixes are Needed to Cope with Agricultural Water Demands Under Climate Change

Author

Listed:
  • Jaime Martínez-Valderrama

    (Universidad de Alicante
    Estación Experimental de Zonas Áridas)

  • Jorge Olcina

    (Universidad de Alicante)

  • Gonzalo Delacámara

    (IE University)

  • Emilio Guirado

    (Universidad de Alicante)

  • Fernando T. Maestre

    (Universidad de Alicante
    Universidad de Alicante)

Abstract

The divergence between agricultural water use and the annual supply of water resources (water gap) has been increasing for decades. The forecast is that this water gap will continue to widen, compromising the water security of a large share of the global population. On the one hand, the increase in demand is attributed to an ever-growing population that, in addition, is adopting a high-water consumption per capita lifestyle (e.g., meat-rich diet, increased use of biofuels and of irrigated agriculture). On the other hand, climate change is increasing aridification and the spatio-temporal heterogeneity of precipitation worldwide. The water gap is particularly acute in drylands, where development and food security has been based on the massive exploitation of water resources, particularly groundwater. Here we analyze the mechanisms underlying this water gap, which is mainly driven by water use in agriculture, and suggest suitable solutions that can help to close it. Using causal diagrams, we show how population generates different demands that create a water gap that prevailing supply-side solutions cannot close. Indeed, it has been widening over the years because water consumption has grown exponentially. This behaviour is explained by a series of mechanisms that it is necessary to understand to realize the complexity of water scarcity problems. For solving the water gap, we propose and exemplify eight lines of action that can be combined and tailored to each territory. Our analyses corroborate the urgent need to plan an integral management of water resources to avoid widespread scenarios of water scarcity under future climatic conditions.

Suggested Citation

  • Jaime Martínez-Valderrama & Jorge Olcina & Gonzalo Delacámara & Emilio Guirado & Fernando T. Maestre, 2023. "Complex Policy Mixes are Needed to Cope with Agricultural Water Demands Under Climate Change," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 37(6), pages 2805-2834, May.
  • Handle: RePEc:spr:waterr:v:37:y:2023:i:6:d:10.1007_s11269-023-03481-5
    DOI: 10.1007/s11269-023-03481-5
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    as
    1. Beatriz Larraz & Enrique San-Martin, 2021. "A Tale of Two Dams: The Impact of Reservoir Management on Rural Depopulation in Central Spain," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 35(14), pages 4769-4787, November.
    2. Johan Rockström & Malin Falkenmark, 2015. "Agriculture: Increase water harvesting in Africa," Nature, Nature, vol. 519(7543), pages 283-285, March.
    3. Sandra Ricart & Antonio M. Rico-Amorós, 2022. "To Be, to Do, to Share: The Triple-Loop of Water Governance to Improve Urban Water Resilience—Testing the Benidorm’ Experience, Spain," Land, MDPI, vol. 11(1), pages 1-30, January.
    4. Javier Ibáñez & Rolando Gartzia & Francisco Javier Alcalá & Jaime Martínez-Valderrama, 2022. "The Importance of Prevention in Tackling Desertification: An Approach to Anticipate Risks of Degradation in Coastal Aquifers," Land, MDPI, vol. 11(10), pages 1-18, September.
    5. Antonio Rico-Amoros & David Sauri & Jorge Olcina-Cantos & José Vera-Rebollo, 2013. "Beyond Megaprojects?. Water Alternatives for Mass Tourism in Coastal Mediterranean Spain," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 27(2), pages 553-565, January.
    6. Cai, Ximing & McKinney, Daene C. & Rosegrant, Mark W., 2003. "Sustainability analysis for irrigation water management in the Aral Sea region," Agricultural Systems, Elsevier, vol. 76(3), pages 1043-1066, June.
    7. Kaboré, Daniel & Reij, Chris, 2004. "The emergence and spreading of an improved traditional soil and water conservation practice in Burkina Faso:," EPTD discussion papers 114, International Food Policy Research Institute (IFPRI).
    8. Molle, François & Tanouti, Oumaima, 2017. "Squaring the circle: Agricultural intensification vs. water conservation in Morocco," Agricultural Water Management, Elsevier, vol. 192(C), pages 170-179.
    9. Maddison, Angus, 2007. "Contours of the World Economy 1-2030 AD: Essays in Macro-Economic History," OUP Catalogue, Oxford University Press, number 9780199227204.
    10. Yue Qin & John T. Abatzoglou & Stefan Siebert & Laurie S. Huning & Amir AghaKouchak & Justin S. Mankin & Chaopeng Hong & Dan Tong & Steven J. Davis & Nathaniel D. Mueller, 2020. "Agricultural risks from changing snowmelt," Nature Climate Change, Nature, vol. 10(5), pages 459-465, May.
    11. Jennifer Franco & Lyla Mehta & Gert Jan Veldwisch, 2013. "The Global Politics of Water Grabbing," Third World Quarterly, Taylor & Francis Journals, vol. 34(9), pages 1651-1675, October.
    12. Douville, H. & Allan, R. P. & Arias, P. A. & Betts, R. A. & Caretta, M. A. & Cherchi, A. & Mukherji, Aditi & Raghavan, K. & Renwick, J., 2022. "Water remains a blind spot in climate change policies," Papers published in Journals (Open Access), International Water Management Institute, pages 1-1(12):000.
    13. Jean-Daniel Rinaudo & Guillermo Donoso, 2019. "State, market or community failure? Untangling the determinants of groundwater depletion in Copiapó (Chile)," International Journal of Water Resources Development, Taylor & Francis Journals, vol. 35(2), pages 283-304, March.
    14. Deines, Jillian M. & Schipanski, Meagan E. & Golden, Bill & Zipper, Samuel C. & Nozari, Soheil & Rottler, Caitlin & Guerrero, Bridget & Sharda, Vaishali, 2020. "Transitions from irrigated to dryland agriculture in the Ogallala Aquifer: Land use suitability and regional economic impacts," Agricultural Water Management, Elsevier, vol. 233(C).
    15. Nicole Jackson & Megan Konar & Arjen Y. Hoekstra, 2015. "The Water Footprint of Food Aid," Sustainability, MDPI, vol. 7(6), pages 1-22, May.
    16. Woodhouse, P. & Muller, M., 2017. "Water Governance—An Historical Perspective on Current Debates," World Development, Elsevier, vol. 92(C), pages 225-241.
    17. Juliana Marcal & Blanca Antizar-Ladislao & Jan Hofman, 2021. "Addressing Water Security: An Overview," Sustainability, MDPI, vol. 13(24), pages 1-18, December.
    18. Jennifer Clapp, 2019. "The rise of financial investment and common ownership in global agrifood firms," Review of International Political Economy, Taylor & Francis Journals, vol. 26(4), pages 604-629, July.
    19. Jonathan A. Foley & Navin Ramankutty & Kate A. Brauman & Emily S. Cassidy & James S. Gerber & Matt Johnston & Nathaniel D. Mueller & Christine O’Connell & Deepak K. Ray & Paul C. West & Christian Balz, 2011. "Solutions for a cultivated planet," Nature, Nature, vol. 478(7369), pages 337-342, October.
    20. Trevor Birkenholtz, 2017. "Assessing India’s drip-irrigation boom: efficiency, climate change and groundwater policy," Water International, Taylor & Francis Journals, vol. 42(6), pages 663-677, August.
    21. Dell'Angelo, Jampel & Rulli, Maria Cristina & D'Odorico, Paolo, 2018. "The Global Water Grabbing Syndrome," Ecological Economics, Elsevier, vol. 143(C), pages 276-285.
    22. Howitt, Richard E., 1994. "Empirical analysis of water market institutions: The 1991 California water market," Resource and Energy Economics, Elsevier, vol. 16(4), pages 357-371, November.
    23. Lixin Wang & Wenzhe Jiao & Natasha MacBean & Maria Cristina Rulli & Stefano Manzoni & Giulia Vico & Paolo D’Odorico, 2022. "Dryland productivity under a changing climate," Nature Climate Change, Nature, vol. 12(11), pages 981-994, November.
    24. Xiya Liang & Pengfei Li & Juanle Wang & Faith Ka Shun Chan & Chuluun Togtokh & Altansukh Ochir & Davaadorj Davaasuren, 2021. "Research Progress of Desertification and Its Prevention in Mongolia," Sustainability, MDPI, vol. 13(12), pages 1-17, June.
    25. Hassan A. Awaad & Elsayed Mansour & Mohammad Akrami & Hassan E.S. Fath & Akbar A. Javadi & Abdelazim Negm, 2020. "Availability and Feasibility of Water Desalination as a Non-Conventional Resource for Agricultural Irrigation in the MENA Region: A Review," Sustainability, MDPI, vol. 12(18), pages 1-14, September.
    26. J. S. Famiglietti, 2014. "The global groundwater crisis," Nature Climate Change, Nature, vol. 4(11), pages 945-948, November.
    27. Uende A. F. Gomes & Léo Heller & Sandy Cairncross & Laia Domenèch & João L. Pena, 2014. "Subsidizing the sustainability of rural water supply: the experience of the Brazilian rural rainwater-harvesting programme," Water International, Taylor & Francis Journals, vol. 39(5), pages 606-619, September.
    28. Carole Dalin & Yoshihide Wada & Thomas Kastner & Michael J. Puma, 2017. "Groundwater depletion embedded in international food trade," Nature, Nature, vol. 543(7647), pages 700-704, March.
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    1. G. P. Tsakiris & D. P. Loucks, 2023. "Adaptive Water Resources Management Under Climate Change: An Introduction," Water Resources Management: An International Journal, Published for the European Water Resources Association (EWRA), Springer;European Water Resources Association (EWRA), vol. 37(6), pages 2221-2233, May.

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