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Assessment of ozone impacts on farming systems: A bio-economic modeling approach applied to the widely diverse French case

Author

Listed:
  • Humblot, Pierre
  • Leconte-Demarsy, Delphine
  • Clerino, Paola
  • Szopa, Sophie
  • Castell, Jean-François
  • Jayet, Pierre-Alain

Abstract

As a result of anthropogenic activities, ozone is produced in the surface atmosphere, causing direct damage to plants and reducing crop yields. By combining a biophysical crop model with an economic supply model we were able to predict and quantify this effect at a fine spatial resolution. We applied our approach to the very varied French case and showed that ozone has significant productivity and land-use effects. A comparison of moderate and high ozone scenarios for 2030 shows that wheat production may decrease by more than 30% and barley production may increase by more than 14% as surface ozone concentration increases. These variations are due to the direct effect of ozone on yields as well as to modifications in land use caused by a shift toward more ozone-resistant crops: our study predicts a 16% increase in the barley-growing area and an equal decrease in the wheat-growing area. Moreover, mean agricultural gross margin losses can go as high as 2.5% depending on the ozone scenario, and can reach 7% in some particularly affected regions. A rise in ozone concentration was also associated with a reduction of agricultural greenhouse gas emissions of about 2%, as a result of decreased use of nitrogen fertilizers. One noteworthy result was that major impacts, including changes in land use, do not necessarily occur in ozone high concentration zones, and may strongly depend on farm systems and their adaptation capability. Our study suggests that policy makers should view ozone pollution as a major potential threat to agricultural yields.

Suggested Citation

  • Humblot, Pierre & Leconte-Demarsy, Delphine & Clerino, Paola & Szopa, Sophie & Castell, Jean-François & Jayet, Pierre-Alain, 2013. "Assessment of ozone impacts on farming systems: A bio-economic modeling approach applied to the widely diverse French case," Ecological Economics, Elsevier, vol. 85(C), pages 50-58.
  • Handle: RePEc:eee:ecolec:v:85:y:2013:i:c:p:50-58
    DOI: 10.1016/j.ecolecon.2012.10.012
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    References listed on IDEAS

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    1. Stéphane Cara & Martin Houzé & Pierre-Alain Jayet, 2005. "Methane and Nitrous Oxide Emissions from Agriculture in the EU: A Spatial Assessment of Sources and Abatement Costs," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 32(4), pages 551-583, December.
    2. De Cara, Stéphane & Jayet, Pierre-Alain, 2011. "Marginal abatement costs of greenhouse gas emissions from European agriculture, cost effectiveness, and the EU non-ETS burden sharing agreement," Ecological Economics, Elsevier, vol. 70(9), pages 1680-1690, July.
    3. Brown, Deborah & Smith, Martha, 1984. "Crop substitution in the estimation of economic benefits due to ozone reduction," Journal of Environmental Economics and Management, Elsevier, vol. 11(4), pages 347-362, December.
    4. Godard, C. & Roger-Estrade, J. & Jayet, P.A. & Brisson, N. & Le Bas, C., 2008. "Use of available information at a European level to construct crop nitrogen response curves for the regions of the EU," Agricultural Systems, Elsevier, vol. 97(1-2), pages 68-82, April.
    5. E. Galko & P.‐A. Jayet, 2011. "Economic and environmental effects of decoupled agricultural support in the EU," Agricultural Economics, International Association of Agricultural Economists, vol. 42(5), pages 605-618, September.
    6. Reilly, J. & Paltsev, S. & Felzer, B. & Wang, X. & Kicklighter, D. & Melillo, J. & Prinn, R. & Sarofim, M. & Sokolov, A. & Wang, C., 2007. "Global economic effects of changes in crops, pasture, and forests due to changing climate, carbon dioxide, and ozone," Energy Policy, Elsevier, vol. 35(11), pages 5370-5383, November.
    7. Clive L. Spash, 1997. "Assessing the Economic Benefits to Agriculture from Air Pollution Control," Journal of Economic Surveys, Wiley Blackwell, vol. 11(1), pages 47-70, March.
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    Cited by:

    1. Parisa Aghajanzadeh-Darzi & Pierre-Alain Jayet & Athanasios Petsakos, 2017. "Improvement of a Bio-Economic Mathematical Programming Model in the Case of On-Farm Source Inputs and Outputs," Journal of Quantitative Economics, Springer;The Indian Econometric Society (TIES), vol. 15(3), pages 489-508, September.
    2. Humblot, Pierre & Jayet, Pierre-Alain & Petsakos, Athanasios, 2017. "Farm-level bio-economic modeling of water and nitrogen use: Calibrating yield response functions with limited data," Agricultural Systems, Elsevier, vol. 151(C), pages 47-60.
    3. Pierre-Alain Jayet & Athanasios Petsakos & Raja Chakir & Anna Lungarska & Stéphane De Cara & Elvire Petel & Pierre Humblot & Caroline Godard & David Leclère & Pierre Cantelaube & Cyril Bourgeois & Mél, 2023. "The European agro-economic model AROPAj," Working Papers hal-04109872, HAL.

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