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Co-Benefits of CO 2 Mitigation for NO X Emission Reduction: A Research Based on the DICE Model

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  • Xi Xie

    (School of Environment, Beijing Normal University, Beijing 100875, China
    The Administrative Center for China’s Agenda 21, Beijing 100875, China)

  • Yuwei Weng

    (Ministry of Education Key Laboratory for Earth System Modeling, Department of Earth System Science, Tsinghua University, Beijing 100084, China
    Joint Center for Global Change Studies, Beijing 100875, China)

  • Wenjia Cai

    (Ministry of Education Key Laboratory for Earth System Modeling, Department of Earth System Science, Tsinghua University, Beijing 100084, China
    Joint Center for Global Change Studies, Beijing 100875, China)

Abstract

Actions to reduce carbon emissions often entail co-benefits for environmental protection, like air pollutants reduction. Previous studies made contributions to estimate these co-benefits, but few considered the feedbacks from the socioeconomic system and the natural system. This paper extends the Dynamic Integrated model of Climate and the Economy (DICE) model, a classical Integrated Assessment model (IAM), into the Dynamic Integrated model of Climate, Air pollution and the Economy (DICAE) model. Through the hard link between a new air pollution module and the other modules in the original DICE, this paper quantifies the co-benefits of mitigating CO 2 emissions for NO X emission reduction, and compares the predicted climate change, economic output and social utility under seven mixed policy scenarios. In addition, uncertainty analysis based on Monte Carlo simulation is carried out to verify the robustness of the DICAE model. The results indicate that the NO X emissions co-emitted with CO 2 emissions would be over 0.6 Gt/year in a no-policy scenario. In policy scenarios, mitigating CO 2 emissions can simultaneously reduce at least 15% of the NO X emissions, and the more severe the climate mitigation target is, the more obvious co-benefits for NO X emission reduction. Although these co-benefits can offset some mitigation costs, it will not be cost-effective when NO X emission reduction is achieved completely depending on ambitious carbon mitigation, so the end-of-pipe technology for NO X emission is also indispensable. For policymakers, they should recognize the co-benefits of climate policies, actively taking mitigation actions. Moreover, they are encouraged to combine CO 2 mitigation with NO X emission reduction and coordinate their policy intensities to make wise use of the co-benefits.

Suggested Citation

  • Xi Xie & Yuwei Weng & Wenjia Cai, 2018. "Co-Benefits of CO 2 Mitigation for NO X Emission Reduction: A Research Based on the DICE Model," Sustainability, MDPI, vol. 10(4), pages 1-18, April.
  • Handle: RePEc:gam:jsusta:v:10:y:2018:i:4:p:1109-:d:140052
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    References listed on IDEAS

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    1. Sébastien Dessus & David O'Connor, 2003. "Climate Policy without Tears CGE-Based Ancillary Benefits Estimates for Chile," Environmental & Resource Economics, Springer;European Association of Environmental and Resource Economists, vol. 25(3), pages 287-317, July.
    2. Bollen, Johannes & van der Zwaan, Bob & Brink, Corjan & Eerens, Hans, 2009. "Local air pollution and global climate change: A combined cost-benefit analysis," Resource and Energy Economics, Elsevier, vol. 31(3), pages 161-181, August.
    3. Rypdal, Kristin & Rive, Nathan & Astrom, Stefan & Karvosenoja, Niko & Aunan, Kristin & Bak, Jesper L. & Kupiainen, Kaarle & Kukkonen, Jaakko, 2007. "Nordic air quality co-benefits from European post-2012 climate policies," Energy Policy, Elsevier, vol. 35(12), pages 6309-6322, December.
    4. Johannes Bollen & Bruno Guay & Stéphanie Jamet & Jan Corfee-Morlot, 2009. "Co-Benefits of Climate Change Mitigation Policies: Literature Review and New Results," OECD Economics Department Working Papers 693, OECD Publishing.
    5. Yang, Xi & Teng, Fei & Wang, Gehua, 2013. "Incorporating environmental co-benefits into climate policies: A regional study of the cement industry in China," Applied Energy, Elsevier, vol. 112(C), pages 1446-1453.
    6. Pizer, William A., 1999. "The optimal choice of climate change policy in the presence of uncertainty," Resource and Energy Economics, Elsevier, vol. 21(3-4), pages 255-287, August.
    7. Ackerman, Frank & Stanton, Elizabeth A. & Bueno, Ramón, 2010. "Fat tails, exponents, extreme uncertainty: Simulating catastrophe in DICE," Ecological Economics, Elsevier, vol. 69(8), pages 1657-1665, June.
    8. Simon Dietz, 2011. "High impact, low probability? An empirical analysis of risk in the economics of climate change," Climatic Change, Springer, vol. 108(3), pages 519-541, October.
    9. Gilbert E. Metcalf & James Stock, 2015. "The Role of Integrated Assessment Models in Climate Policy: A User's Guide and Assessment," Discussion Papers Series, Department of Economics, Tufts University 0811, Department of Economics, Tufts University.
    10. Nordhaus, William D., 1993. "Rolling the 'DICE': an optimal transition path for controlling greenhouse gases," Resource and Energy Economics, Elsevier, vol. 15(1), pages 27-50, March.
    11. Burtraw, Dallas & Krupnick, Alan & Palmer, Karen & Paul, Anthony & Toman, Michael & Bloyd, Cary, 2003. "Ancillary benefits of reduced air pollution in the US from moderate greenhouse gas mitigation policies in the electricity sector," Journal of Environmental Economics and Management, Elsevier, vol. 45(3), pages 650-673, May.
    12. Shrestha, Ram M. & Pradhan, Shreekar, 2010. "Co-benefits of CO2 emission reduction in a developing country," Energy Policy, Elsevier, vol. 38(5), pages 2586-2597, May.
    13. Dong, Huijuan & Dai, Hancheng & Dong, Liang & Fujita, Tsuyoshi & Geng, Yong & Klimont, Zbigniew & Inoue, Tsuyoshi & Bunya, Shintaro & Fujii, Minoru & Masui, Toshihiko, 2015. "Pursuing air pollutant co-benefits of CO2 mitigation in China: A provincial leveled analysis," Applied Energy, Elsevier, vol. 144(C), pages 165-174.
    14. Dietz, Simon, 2011. "High impact, low probability?: an empirical analysis of risk in the economics of climate change," LSE Research Online Documents on Economics 38586, London School of Economics and Political Science, LSE Library.
    15. John Weyant, 2017. "Some Contributions of Integrated Assessment Models of Global Climate Change," Review of Environmental Economics and Policy, Association of Environmental and Resource Economists, vol. 11(1), pages 115-137.
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    1. Pavel Tcvetkov, 2021. "Climate Policy Imbalance in the Energy Sector: Time to Focus on the Value of CO 2 Utilization," Energies, MDPI, vol. 14(2), pages 1-22, January.

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