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Mitigation of Methane and Nitrous Oxide Emissions from Waste, Energy and Industry

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  • K. Casey Delhotal, Francisco C. de la Chesnaye, Ann Gardiner, Judith Bates, and Alexei Sankovski

Abstract

Traditionally, economic analyses of greenhouse gas (GHG) mitigation focused on carbon dioxide (CO2) emissions from energy sources, while nonCO2 GHGs were not incorporated into the studies, due to the lack of data on abatement costs of non-CO2 GHGs. In recent years, however, increasing attention has been dedicated to the benefits of reducing emissions of non-CO2 GHGs such as methane and nitrous oxide. Increased attention to the potential role of these gases in a GHG reduction policy increased the need for better data on the costs of non-CO2 GHG abatement for countries and regions outside of the US and the European Union (EU). Using a net present value calculation, this analysis develops regionally adjusted costs per mitigation option and marginal abatement cost curves by region for use in economic models. The result is worldwide cost estimates for methane and nitrous oxide from waste, energy and the industrial sectors. This paper also demonstrates the ability to significantly reduce greenhouse gases from these sectors with current technologies and the low cost of methane and nitrous oxide relative to CO reductions.

Suggested Citation

  • K. Casey Delhotal, Francisco C. de la Chesnaye, Ann Gardiner, Judith Bates, and Alexei Sankovski, 2006. "Mitigation of Methane and Nitrous Oxide Emissions from Waste, Energy and Industry," The Energy Journal, International Association for Energy Economics, vol. 0(Special I), pages 45-62.
  • Handle: RePEc:aen:journl:2006se_weyant-a03
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    Cited by:

    1. Ron SANDS & Katja SCHUMACHER, 2008. "Decomposition Analysis and Climate Policy in a General Equilibrium Model of Germany," EcoMod2008 23800124, EcoMod.
    2. Kang, Mary & Mauzerall, Denise L. & Ma, Daniel Z. & Celia, Michael A., 2019. "Reducing methane emissions from abandoned oil and gas wells: Strategies and costs," Energy Policy, Elsevier, vol. 132(C), pages 594-601.
    3. Deborah Ottinger Schaefer & Dave Godwin & Jochen Harnisch, 2006. "Estimating Future Emissions and Potential Reductions of HFCs, PFCs, and SF6," The Energy Journal, , vol. 27(3_suppl), pages 63-88, December.
    4. Saikku, Laura & Rautiainen, Aapo & Kauppi, Pekka E., 2008. "The sustainability challenge of meeting carbon dioxide targets in Europe by 2020," Energy Policy, Elsevier, vol. 36(2), pages 730-742, February.
    5. den Elzen, Michel & Höhne, Niklas & Moltmann, Sara, 2008. "The Triptych approach revisited: A staged sectoral approach for climate mitigation," Energy Policy, Elsevier, vol. 36(3), pages 1107-1124, March.
    6. Francesco Bosello & Lorenza Campagnolo & Fabio Eboli & Ramiro Parrado, 2012. "Energy from waste: generation potential and mitigation opportunity," Environmental Economics and Policy Studies, Springer;Society for Environmental Economics and Policy Studies - SEEPS, vol. 14(4), pages 403-420, October.
    7. Alain Bernard & Marc Vielle, 2008. "GEMINI-E3, a general equilibrium model of international–national interactions between economy, energy and the environment," Computational Management Science, Springer, vol. 5(3), pages 173-206, May.
    8. Ajay Gambhir & Tamaryn Napp & Adam Hawkes & Lena Höglund-Isaksson & Wilfried Winiwarter & Pallav Purohit & Fabian Wagner & Dan Bernie & Jason Lowe, 2017. "The Contribution of Non-CO 2 Greenhouse Gas Mitigation to Achieving Long-Term Temperature Goals," Energies, MDPI, vol. 10(5), pages 1-23, May.

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    JEL classification:

    • F0 - International Economics - - General

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