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Does investment in irrigation technology necessarily generate rebound effects? A simulation analysis based on an agro-economic model

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  • Berbel, J.
  • Mateos, L.

Abstract

Investing in more efficient irrigation technology is usually regarded as a means to reduce the use of water by irrigated agriculture. However, some authors report that the introduction of irrigation systems that apply water more uniformly may actually increase water catchment depletion: the so-called ‘rebound effect’. In this paper a simple model that combines irrigation, agronomic, and microeconomic concepts is used to systematically analyze the conditions under which improved irrigation application uniformity may lead to increased water use and/or consumption. The analysis is illustrated with examples from the experience with irrigation modernization in Spain. Water demand (the value of marginal water productivity) becomes inelastic as the irrigation application uniformity increases. The increase in water depletion due to the introduction of more uniform irrigation systems is insignificant if land is limited and farmers optimize their profit. If land is not a limiting factor, new water abstractions are likely to occur, potentially leading to a vicious circle in which irrigated land expands while water resources become overexploited. This cycle tends to slow down as irrigation application uniformity increases. More accurate water accounting is suggested as an instrument for controlling water depletion complementary to investing in irrigation efficiency when water conservation at the basin scale is the main objective.

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  • Berbel, J. & Mateos, L., 2014. "Does investment in irrigation technology necessarily generate rebound effects? A simulation analysis based on an agro-economic model," Agricultural Systems, Elsevier, vol. 128(C), pages 25-34.
  • Handle: RePEc:eee:agisys:v:128:y:2014:i:c:p:25-34
    DOI: 10.1016/j.agsy.2014.04.002
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    1. González-Dugo, M.P. & Escuin, S. & Cano, F. & Cifuentes, V. & Padilla, F.L.M. & Tirado, J.L. & Oyonarte, N. & Fernández, P. & Mateos, L., 2013. "Monitoring evapotranspiration of irrigated crops using crop coefficients derived from time series of satellite images. II. Application on basin scale," Agricultural Water Management, Elsevier, vol. 125(C), pages 92-104.
    2. Sorrell, Steve & Dimitropoulos, John, 2008. "The rebound effect: Microeconomic definitions, limitations and extensions," Ecological Economics, Elsevier, vol. 65(3), pages 636-649, April.
    3. Molden, David & Oweis, Theib & Steduto, Pasquale & Bindraban, Prem & Hanjra, Munir A. & Kijne, Jacob, 2010. "Improving agricultural water productivity: Between optimism and caution," Agricultural Water Management, Elsevier, vol. 97(4), pages 528-535, April.
    4. Pfeiffer, Lisa & Lin, C.-Y. Cynthia, 2014. "Does efficient irrigation technology lead to reduced groundwater extraction? Empirical evidence," Journal of Environmental Economics and Management, Elsevier, vol. 67(2), pages 189-208.
    5. Playan, Enrique & Mateos, Luciano, 2006. "Modernization and optimization of irrigation systems to increase water productivity," Agricultural Water Management, Elsevier, vol. 80(1-3), pages 100-116, February.
    6. A. Greening, Lorna & Greene, David L. & Difiglio, Carmen, 2000. "Energy efficiency and consumption -- the rebound effect -- a survey," Energy Policy, Elsevier, vol. 28(6-7), pages 389-401, June.
    7. Mantovani, E. C. & Villalobos, F. J. & Organ, F. & Fereres, E., 1995. "Modelling the effects of sprinkler irrigation uniformity on crop yield," Agricultural Water Management, Elsevier, vol. 27(3-4), pages 243-257, July.
    8. Molle, Francois & Berkoff, J., 2007. "Irrigation water pricing: the gap between theory and practice," IWMI Books, Reports H040645, International Water Management Institute.
    9. Vandersypen, Klaartje & Bengaly, Kongotigui & Keita, Abdoulaye C.T. & Sidibe, Souleymane & Raes, Dirk & Jamin, Jean-Yves, 2006. "Irrigation performance at tertiary level in the rice schemes of the Office du Niger (Mali): Adequate water delivery through over-supply," Agricultural Water Management, Elsevier, vol. 83(1-2), pages 144-152, May.
    10. Mateos, L. & Berengena, J. & Orgaz, F. & Diz, J. & Fereres, E., 1991. "A comparison between drip and furrow irrigation in cotton at two levels of water supply," Agricultural Water Management, Elsevier, vol. 19(4), pages 313-324, May.
    11. Perry, C. J., 1999. "The IWMI water resources paradigm - definitions and implications," Agricultural Water Management, Elsevier, vol. 40(1), pages 45-50, March.
    12. Mateos, L. & González-Dugo, M.P. & Testi, L. & Villalobos, F.J., 2013. "Monitoring evapotranspiration of irrigated crops using crop coefficients derived from time series of satellite images. I. Method validation," Agricultural Water Management, Elsevier, vol. 125(C), pages 81-91.
    13. Millan, JoseS. & Berbel, Julio, 1994. "A multicriteria model for irrigated agricultural planning under economic and technical risk," Agricultural Systems, Elsevier, vol. 44(1), pages 105-117.
    14. Keller, Andrew. & Keller, Jack. & Seckler,David., 1996. "Integrated water resource systems: Theory and policy implications," IWMI Research Reports H 18208, International Water Management Institute.
    15. Playan, E. & Salvador, R. & Faci, J.M. & Zapata, N. & Martinez-Cob, A. & Sanchez, I., 2005. "Day and night wind drift and evaporation losses in sprinkler solid-sets and moving laterals," Agricultural Water Management, Elsevier, vol. 76(3), pages 139-159, August.
    16. Macarena Dagnino & Frank Ward, 2012. "Economics of Agricultural Water Conservation: Empirical Analysis and Policy Implications," International Journal of Water Resources Development, Taylor & Francis Journals, vol. 28(4), pages 577-600.
    17. Berbel, J. & Gomez-Limon, J. A., 2000. "The impact of water-pricing policy in Spain: an analysis of three irrigated areas," Agricultural Water Management, Elsevier, vol. 43(2), pages 219-238, March.
    18. Julio Berbel & Solveig Kolberg & Julia Martin-Ortega, 2012. "Assessment of the Draft Hydrological Basin Plan of the Guadalquivir River Basin (Spain)," International Journal of Water Resources Development, Taylor & Francis Journals, vol. 28(1), pages 43-55.
    19. Perry, Chris & Steduto, Pasquale & Allen, Richard. G. & Burt, Charles M., 2009. "Increasing productivity in irrigated agriculture: Agronomic constraints and hydrological realities," Agricultural Water Management, Elsevier, vol. 96(11), pages 1517-1524, November.
    20. Keller, Andrew & Keller, Jack & Seckler, David, 1996. "Integrated water resource systems: Theory and policy implications," IWMI Research Reports 52730, International Water Management Institute.
    21. Lecina, S. & Isidoro, D. & Playán, E. & Aragüés, R., 2010. "Irrigation modernization and water conservation in Spain: The case of Riegos del Alto Aragón," Agricultural Water Management, Elsevier, vol. 97(10), pages 1663-1675, October.
    22. Alcott, Blake, 2005. "Jevons' paradox," Ecological Economics, Elsevier, vol. 54(1), pages 9-21, July.
    23. Molle, Francois & Berkoff, Jeremy (ed.), 2007. "Irrigation water pricing: the gap between theory and practice," IWMI Books, International Water Management Institute, number 137957.
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