Reviewing the links and feedbacks between climate change and air pollution in Europe

被引:20
作者
Im, Ulas [1 ]
Geels, Camilla [1 ]
Hanninen, Risto [2 ]
Kukkonen, Jaakko [2 ,3 ]
Rao, Shilpa [4 ]
Ruuhela, Reija [2 ]
Sofiev, Mikhail [2 ]
Schaller, Nathalie [5 ]
Hodnebrog, Oivind [6 ]
Sillmann, Jana [7 ]
Schwingshackl, Clemens [6 ,8 ]
Christensen, Jesper H. [2 ]
Bojariu, Roxana [9 ]
Aunan, Kristin [6 ]
机构
[1] Aarhus Univ, Interdisciplinary Ctr Climate Change, Dept Environm Sci, Roskilde, Denmark
[2] Finnish Meteorol Inst, Helsinki, Finland
[3] Univ Hertfordshire, Ctr Atmospher & Climate Phys Res, Ctr Climate Change Res, Hatfield, England
[4] Norwegian Inst Publ Hlth, Oslo, Norway
[5] Swiss Natl Sci Fdn, Bern, Switzerland
[6] Ctr Int Climate Res CICERO, Oslo, Norway
[7] Univ Hamburg, Ctr Earth Syst Res & Sustainabil, Hamburg, Germany
[8] Ludwig Maximilians Univ Munchen, Munich, Germany
[9] Natl Meteorol Adm, Bucharest, Romania
基金
欧盟地平线“2020”;
关键词
climate change; air pollution; Europe; wildland fires; ozone; particulate matter; HEALTH CO-BENEFITS; WILD-LAND FIRES; AEROSOL-CLOUD INTERACTIONS; MAJOR PHOTOCHEMICAL POLLUTANTS; BLACK CARBON CONCENTRATIONS; EMISSION HEIGHTS; ORGANIC AEROSOL; CHEMICAL-COMPOSITION; VERTICAL PROFILES; CHANGE MITIGATION;
D O I
10.3389/fenvs.2022.954045
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Feedbacks between air pollutants and meteorology play a crucial role in the direction of the response of future climate and air pollution. These feedbacks are important to understand and quantify the potential impact of adaptation and mitigation policies setup for protecting the population against air pollution and heat stress. We review the interactions between climate and air pollution, with special focus on the projections of air pollution under different future climate scenarios and time horizons, based on a literature review of research articles and reports from the last decade. The assessment focuses on 1) the specific impacts of climate change on air pollution and natural particle and precursor emissions in Europe in the near future (2030), by mid-century (2050) and by end of the century (2100), 2) impacts on air pollution due to changes in emissions vs. changes in climate, 3) feedbacks from air pollution on climate, 4) impacts of climate change on wildland fires and air pollutant levels, and 5) the role of adaptation and mitigation policies on climate change and air pollution. Available literature to a large extent suggests that ozone concentrations will likely increase in the second half of the century by up to 9 ppb [-4 + 9.3], while in the first half of the century, changes are much smaller and are up to +/- 1.5 ppb. These changes are mainly attributed to increased temperatures and emissions of biogenic volatile organic compounds, but also depends on the models and scenarios used in these studies. On the other hand, the predicted changes in particle concentrations and chemical composition are uncertain and much smaller. Similar to ozone, larger changes in the particle concentrations are projected in the second half of the century. The main conclusion from this review is that the estimated changes in pollutant levels in the future vary significantly depending on the applied model systems, as well as the different emission or meteorological scenarios used in the different studies. Nevertheless, studies generally agree on the overall trend of the changes in pollutant levels due to climate change, in particular in the second half of the century.
引用
收藏
页数:19
相关论文
共 170 条
[1]   Air-quality-related health impacts from climate change and from adaptation of cooling demand for buildings in the eastern United States: An interdisciplinary modeling study [J].
Abel, David W. ;
Holloway, Tracey ;
Harkey, Monica ;
Meier, Paul ;
Ahl, Doug ;
Limaye, Vijay S. ;
Patz, Jonathan A. .
PLOS MEDICINE, 2018, 15 (07)
[2]   AN ASSESSMENT OF PM2.5 REDUCTIONS AS A RESULT OF TRANSPORT FLEET AND FUEL POLICIES ADDRESSING CO2 EMISSIONS AND CLIMATE CHANGE [J].
Alam, Md. Saniul ;
Hyde, Bernard ;
Duffy, Paul ;
Mcnabola, Aonghus .
AIR POLLUTION XXV, 2017, 211 :15-27
[3]   Global Air Quality and Health Co-benefits of Mitigating Near-Term Climate Change through Methane and Black Carbon Emission Controls [J].
Anenberg, Susan C. ;
Schwartz, Joel ;
Shindell, Drew ;
Amann, Markus ;
Faluvegi, Greg ;
Klimont, Zbigniew ;
Janssens-Maenhout, Greet ;
Pozzoli, Luca ;
Van Dingenen, Rita ;
Vignati, Elisabetta ;
Emberson, Lisa ;
Muller, Nicholas Z. ;
West, J. Jason ;
Williams, Martin ;
Demkine, Volodymyr ;
Hicks, W. Kevin ;
Kuylenstierna, Johan ;
Raes, Frank ;
Ramanathan, Veerabhadran .
ENVIRONMENTAL HEALTH PERSPECTIVES, 2012, 120 (06) :831-839
[4]   CO2 inhibition of global terrestrial isoprene emissions:: Potential implications for atmospheric chemistry [J].
Arneth, Almut ;
Miller, Paul A. ;
Scholze, Marko ;
Hickler, Thomas ;
Schurgers, Guy ;
Smith, Benjamin ;
Prentice, I. Colin .
GEOPHYSICAL RESEARCH LETTERS, 2007, 34 (18)
[5]   Potential impact on air pollution from ambitious national CO2 emission abatement strategies in the Nordic countries - environmental links between the UNFCCC and the UNECE - CLRTAP [J].
Astrom, Stefan ;
Tohka, Antti ;
Bak, Jesper ;
Lindblad, Maria ;
Arnell, Jenny .
ENERGY POLICY, 2013, 53 :114-124
[6]   Human-started wildfires expand the fire niche across the United States [J].
Balch, Jennifer K. ;
Bradley, Bethany A. ;
Abatzoglou, John T. ;
Nagy, R. Chelsea ;
Fusco, Emily J. ;
Mahood, Adam L. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2017, 114 (11) :2946-2951
[7]   Recent past (1979-2014) and future (2070-2099) isoprene fluxes over Europe simulated with the MEGAN-MOHYCAN model [J].
Bauwens, Maite ;
Stavrakou, Trissevgeni ;
Mueller, Jean-Francois ;
Van Schaeybroeck, Bert ;
De Cruz, Lesley ;
De Troch, Rozemien ;
Giot, Olivier ;
Hamdi, Rafiq ;
Termonia, Piet ;
Laffineur, Quentin ;
Amelynck, Crist ;
Schoon, Niels ;
Heinesch, Bernard ;
Holst, Thomas ;
Arneth, Almut ;
Ceulemans, Reinhart ;
Sanchez-Lorenzo, Arturo ;
Guenther, Alex .
BIOGEOSCIENCES, 2018, 15 (12) :3673-3690
[8]   Forest fire danger projections in the Mediterranean using ENSEMBLES regional climate change scenarios (vol 122, pg 185, 2014) [J].
Bedia, J. ;
Herrera, S. ;
Camia, A. ;
Moreno, J. M. ;
Gutierrez, J. M. .
CLIMATIC CHANGE, 2014, 123 (02) :343-344
[9]   Bounding Global Aerosol Radiative Forcing of Climate Change [J].
Bellouin, N. ;
Quaas, J. ;
Gryspeerdt, E. ;
Kinne, S. ;
Stier, P. ;
Watson-Parris, D. ;
Boucher, O. ;
Carslaw, K. S. ;
Christensen, M. ;
Daniau, A. -L. ;
Dufresne, J. -L. ;
Feingold, G. ;
Fiedler, S. ;
Forster, P. ;
Gettelman, A. ;
Haywood, J. M. ;
Lohmann, U. ;
Malavelle, F. ;
Mauritsen, T. ;
McCoy, D. T. ;
Myhre, G. ;
Muelmenstaedt, J. ;
Neubauer, D. ;
Possner, A. ;
Rugenstein, M. ;
Sato, Y. ;
Schulz, M. ;
Schwartz, S. E. ;
Sourdeval, O. ;
Storelvmo, T. ;
Toll, V. ;
Winker, D. ;
Stevens, B. .
REVIEWS OF GEOPHYSICS, 2020, 58 (01)
[10]   The value of air pollution co-benefits of climate policies: Analysis with a global sector-trade CGE model called WorldScan [J].
Bollen, Johannes .
TECHNOLOGICAL FORECASTING AND SOCIAL CHANGE, 2015, 90 :178-191