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A Spatial Model of Air Pollution: The Impact of the Concentration-Response Function

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  • Andrew L. Goodkind
  • Jay S. Coggins
  • Julian D. Marshall

Abstract

We develop a spatial model to examine policies aimed at reducing ambient concentrations of fine particulates (PM2.5), with emissions from many sources that affect many population centers. Two alternative specifications of the relationship between PM2.5 concentration and health impacts from Krewski et al. are analyzed: log-linear, which implies downward-sloping marginal benefits of abatement; and log-log, which implies upward-sloping marginal benefits of abatement. A standard assumption would be that the greatest benefit from cleanup would occur in the dirtiest locations. We show, however, that for the log-log (but not log-linear) relationship, the largest risk reductions are achieved from abatement of pollution in the cleanest locations. Our model demonstrates that with a log-log relationship society should prefer lower emissions and lower pollution concentrations than if the relationship is log-linear. Our model also shows that an efficient abatement policy may substantially outperform a uniform pollution standard such as the National Ambient Air Quality Standards (NAAQS).

Suggested Citation

  • Andrew L. Goodkind & Jay S. Coggins & Julian D. Marshall, 2014. "A Spatial Model of Air Pollution: The Impact of the Concentration-Response Function," Journal of the Association of Environmental and Resource Economists, University of Chicago Press, vol. 1(4), pages 451-479.
  • Handle: RePEc:ucp:jaerec:doi:10.1086/678985
    DOI: 10.1086/678985
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    References listed on IDEAS

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    1. David D. Henry III & Nicholas Z. Muller & Robert O. Mendelsohn, 2011. "The social cost of trading: Measuring the increased damages from sulfur dioxide trading in the United States," Journal of Policy Analysis and Management, John Wiley & Sons, Ltd., vol. 30(3), pages 598-612, June.
    2. Evan Kwerel, 1977. "To Tell the Truth: Imperfect Information and Optimal Pollution Control," The Review of Economic Studies, Review of Economic Studies Ltd, vol. 44(3), pages 595-601.
    3. Moledina, Amyaz A. & Coggins, Jay S. & Polasky, Stephen & Costello, Christopher, 2003. "Dynamic environmental policy with strategic firms: prices versus quantities," Journal of Environmental Economics and Management, Elsevier, vol. 45(2, Supple), pages 356-376, March.
    4. Nicholas Z. Muller & Robert Mendelsohn, 2009. "Efficient Pollution Regulation: Getting the Prices Right," American Economic Review, American Economic Association, vol. 99(5), pages 1714-1739, December.
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    Cited by:

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    2. Clay, Karen & Lewis, Joshua & Severnini, Edson, 2018. "Pollution, Infectious Disease, and Mortality: Evidence from the 1918 Spanish Influenza Pandemic," The Journal of Economic History, Cambridge University Press, vol. 78(4), pages 1179-1209, December.
    3. Clay, Karen & Lewis, Joshua & Severnini, Edson R., 2016. "Canary in a Coal Mine: Infant Mortality, Property Values, and Tradeoffs Associated with Mid-20th Century Air Pollution," IZA Discussion Papers 9884, Institute of Labor Economics (IZA).
    4. Lucas Cain & Danae Hernandez-Cortes & Christopher Timmins & Paige Weber, 2023. "Recent Findings and Methodologies in Economics Research in Environmental Justice," CESifo Working Paper Series 10283, CESifo.
    5. Sheena E. Martenies & Chad W. Milando & Guy O. Williams & Stuart A. Batterman, 2017. "Disease and Health Inequalities Attributable to Air Pollutant Exposure in Detroit, Michigan," IJERPH, MDPI, vol. 14(10), pages 1-24, October.
    6. Werner Antweiler, 2017. "Emission trading for air pollution hot spots: getting the permit market right," Environmental Economics and Policy Studies, Springer;Society for Environmental Economics and Policy Studies - SEEPS, vol. 19(1), pages 35-58, January.

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