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Improving demand technology and internalizing external effects in groundwater market framework, case study: Qazvin plain in Iran

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  • Najafi Alamdarlo, Hamed
  • Pourmozafar, Hosein
  • Vakilpoor, Mohamad Hasan

Abstract

Water supply and demand policies have associated with different implications for sustainable groundwater management. These policies are adopted aimed to improve the welfare of the water beneficiaries. Accordingly, this study has analyzed the effects of improvement on the irrigation systems efficiency and the internalization of external effects of groundwater extraction in a dynamic market framework in Qazvin plain. For this purpose, firstly water supply and demand functions are estimated, and the effects of applying two different scenarios have been evaluated using the dynamic programming model. The Spatial Lag model has been used to estimate the groundwater extraction function and internalization of external effects of groundwater extraction. According to the results, improvement of irrigation systems has a more effective role in improving aquifer status. Also, applying internalization scenario on the 50-year horizon will reduce the present value of the welfare of the exploiters by 33%, while improving irrigation system will increase their welfare level by 143%. Also, this policy can reduce the rate of water table reduction in the aquifer. Accordingly, it is recommended that supportive policies be developed by the government to improve the efficiency of irrigation systems.

Suggested Citation

  • Najafi Alamdarlo, Hamed & Pourmozafar, Hosein & Vakilpoor, Mohamad Hasan, 2019. "Improving demand technology and internalizing external effects in groundwater market framework, case study: Qazvin plain in Iran," Agricultural Water Management, Elsevier, vol. 213(C), pages 164-173.
  • Handle: RePEc:eee:agiwat:v:213:y:2019:i:c:p:164-173
    DOI: 10.1016/j.agwat.2018.10.005
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    1. Marca Weinberg & Catherine L. Kling & James E. Wilen, 1993. "Water Markets and Water Quality," American Journal of Agricultural Economics, Agricultural and Applied Economics Association, vol. 75(2), pages 278-291.
    2. Javier Calatrava & Alberto Garrido, 2005. "Modelling water markets under uncertain water supply," European Review of Agricultural Economics, Oxford University Press and the European Agricultural and Applied Economics Publications Foundation, vol. 32(2), pages 119-142, June.
    3. Gomez-Limon, Jose A. & Martinez, Yolanda, 2006. "Multi-criteria modelling of irrigation water market at basin level: A Spanish case study," European Journal of Operational Research, Elsevier, vol. 173(1), pages 313-336, August.
    4. Joan Pujol & Meri Raggi & Davide Viaggi, 2005. "Agricultural water markets: exploring limits and opportunities in Italy and Spain," DEIAgra Working Papers 5001, Alma Mater Studiorum University of Bologna, Department of Agricultural Economics and Engineering, revised Mar 2005.
    5. Bjornlund, Henning & Nicol, Lorraine & Klein, K.K., 2009. "The adoption of improved irrigation technology and management practices--A study of two irrigation districts in Alberta, Canada," Agricultural Water Management, Elsevier, vol. 96(1), pages 121-131, January.
    6. Du Bois, Rodrigo Salcedo & Macias, Miguel Angel Gutierrez, 2013. "Cooperation makes it happen? Groundwater management in Aguascalientes, Mexico: An experimental approach," 2013 Annual Meeting, August 4-6, 2013, Washington, D.C. 151139, Agricultural and Applied Economics Association.
    7. Quirino Paris & Richard E. Howitt, 1998. "An Analysis of Ill-Posed Production Problems Using Maximum Entropy," American Journal of Agricultural Economics, Agricultural and Applied Economics Association, vol. 80(1), pages 124-138.
    8. Basharat A. Pitafi & James A. Roumasset, 2009. "Pareto-Improving Water Management over Space and Time: The Honolulu Case," American Journal of Agricultural Economics, Agricultural and Applied Economics Association, vol. 91(1), pages 138-153.
    9. Zaman, A.M. & Malano, H.M. & Davidson, B., 2009. "An integrated water trading-allocation model, applied to a water market in Australia," Agricultural Water Management, Elsevier, vol. 96(1), pages 149-159, January.
    10. Pfeiffer, Lisa & Lin, C.-Y. Cynthia, 2012. "Groundwater pumping and spatial externalities in agriculture," Journal of Environmental Economics and Management, Elsevier, vol. 64(1), pages 16-30.
    11. Ronald C. Griffin, 2006. "Water Resource Economics: The Analysis of Scarcity, Policies, and Projects," MIT Press Books, The MIT Press, edition 1, volume 1, number 026207267x, December.
    12. Easter, K William & Rosegrant, Mark W & Dinar, Ariel, 1999. "Formal and Informal Markets for Water: Institutions, Performance, and Constraints," The World Bank Research Observer, World Bank, vol. 14(1), pages 99-116, February.
    13. Gardner, Roy & Moore, Michael R & Walker, James M, 1997. "Governing a Groundwater Commons: A Strategic and Laboratory Analysis of Western Water Law," Economic Inquiry, Western Economic Association International, vol. 35(2), pages 218-234, April.
    14. Jaghdani, Tinoush Jamali & Brümmer, Bernhard, 2011. "Demand for Irrigation Water for Pistachio Production from Depleting Groundwater Resources: Spatial Econometric Approach," 2011 International Congress, August 30-September 2, 2011, Zurich, Switzerland 114457, European Association of Agricultural Economists.
    15. Howitt, Richard E., 2005. "PMP Based Production Models-Development and Integration," 2005 International Congress, August 23-27, 2005, Copenhagen, Denmark 24484, European Association of Agricultural Economists.
    16. Brozovic, Nicholas & Sunding, David L. & Zilberman, David, 2010. "On the spatial nature of the groundwater pumping externality," Resource and Energy Economics, Elsevier, vol. 32(2), pages 154-164, April.
    17. Grafton, R. Quentin & Horne, James, 2014. "Water markets in the Murray-Darling Basin," Agricultural Water Management, Elsevier, vol. 145(C), pages 61-71.
    18. Chakravorty Ujjayant & Hochman Eithan & Zilberman David, 1995. "A Spatial Model of Optimal Water Conveyance," Journal of Environmental Economics and Management, Elsevier, vol. 29(1), pages 25-41, July.
    19. Li, Y.P. & Liu, J. & Huang, G.H., 2014. "A hybrid fuzzy-stochastic programming method for water trading within an agricultural system," Agricultural Systems, Elsevier, vol. 123(C), pages 71-83.
    20. Richard E. Howitt, 1995. "Positive Mathematical Programming," American Journal of Agricultural Economics, Agricultural and Applied Economics Association, vol. 77(2), pages 329-342.
    21. Esteban, Encarna & Albiac, José, 2011. "Groundwater and ecosystems damages: Questioning the Gisser-Sánchez effect," Ecological Economics, Elsevier, vol. 70(11), pages 2062-2069, September.
    22. Schmid, Erwin & Sinabell, Franz, 2005. "Using the Positive Mathematical Programming Method to Calibrate Linear Programming Models," Discussion Papers DP-10-2005, University of Natural Resources and Life Sciences, Vienna, Department of Economics and Social Sciences, Institute for Sustainable Economic Development.
    23. Ereney Hadjigeorgalis, 2009. "A Place for Water Markets: Performance and Challenges," Review of Agricultural Economics, Agricultural and Applied Economics Association, vol. 31(1), pages 50-67.
    24. Knapp, Keith C. & Baerenklau, Kenneth A., 2006. "Ground Water Quantity and Quality Management: Agricultural Production and Aquifer Salinization over Long Time Scales," Journal of Agricultural and Resource Economics, Western Agricultural Economics Association, vol. 31(3), pages 1-26, December.
    25. Solmaria Halleck Vega & J. Paul Elhorst, 2015. "The Slx Model," Journal of Regional Science, Wiley Blackwell, vol. 55(3), pages 339-363, June.
    26. Tellez Foster, Edgar & Rapoport, Amnon & Dinar, Ariel, 2017. "Groundwater and electricity consumption under alternative subsidies: Evidence from laboratory experiments," Journal of Behavioral and Experimental Economics (formerly The Journal of Socio-Economics), Elsevier, vol. 68(C), pages 41-52.
    27. Palazzo, Amanda & Brozović, Nicholas, 2014. "The role of groundwater trading in spatial water management," Agricultural Water Management, Elsevier, vol. 145(C), pages 50-60.
    28. Balali, Hamid & Khalilian, Sadegh & Viaggi, Davide & Bartolini, Fabio & Ahmadian, Majid, 2011. "Groundwater balance and conservation under different water pricing and agricultural policy scenarios: A case study of the Hamadan-Bahar plain," Ecological Economics, Elsevier, vol. 70(5), pages 863-872, March.
    29. Janmaat, Johannus A., 2005. "Sharing clams: tragedy of an incomplete commons," Journal of Environmental Economics and Management, Elsevier, vol. 49(1), pages 26-51, January.
    30. Alberto Garrido, 2000. "A mathematical programming model applied to the study of water markets within the Spanish agricultural sector," Annals of Operations Research, Springer, vol. 94(1), pages 105-123, January.
    31. Chakravorty, Ujjayant & Umetsu, Chieko, 2003. "Basinwide water management: a spatial model," Journal of Environmental Economics and Management, Elsevier, vol. 45(1), pages 1-23, January.
    32. Zekri, Slim & Easter, William, 2005. "Estimating the potential gains from water markets: a case study from Tunisia," Agricultural Water Management, Elsevier, vol. 72(3), pages 161-175, April.
    33. Balta-Ozkan, Nazmiye & Yildirim, Julide & Connor, Peter M., 2015. "Regional distribution of photovoltaic deployment in the UK and its determinants: A spatial econometric approach," Energy Economics, Elsevier, vol. 51(C), pages 417-429.
    34. Nazari, Bijan & Liaghat, Abdolmajid & Akbari, Mohammad Reza & Keshavarz, Marzieh, 2018. "Irrigation water management in Iran: Implications for water use efficiency improvement," Agricultural Water Management, Elsevier, vol. 208(C), pages 7-18.
    35. Medellín-Azuara, J. & Howitt, R.E. & Harou, J.J., 2012. "Predicting farmer responses to water pricing, rationing and subsidies assuming profit maximizing investment in irrigation technology," Agricultural Water Management, Elsevier, vol. 108(C), pages 73-82.
    36. Ereney Hadjigeorgalis, 2009. "A Place for Water Markets: Performance and Challenges," Review of Agricultural Economics, Agricultural and Applied Economics Association, vol. 31(1), pages 50-67.
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    2. Aghaie, Vahid & Alizadeh, Hosein & Afshar, Abbas, 2020. "Agent-Based hydro-economic modelling for analysis of groundwater-based irrigation Water Market mechanisms," Agricultural Water Management, Elsevier, vol. 234(C).
    3. de Bonviller, Simon & Wheeler, Sarah Ann & Zuo, Alec, 2020. "The dynamics of groundwater markets: Price leadership and groundwater demand elasticity in the Murrumbidgee, Australia," Agricultural Water Management, Elsevier, vol. 239(C).

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