Should we see urban trees as effective solutions to reduce increasing ozone levels in cities?

被引:144
作者
Sicard, Pierre [1 ]
Agathokleous, Evgenios [2 ,3 ]
Araminiene, Valda [4 ]
Carrari, Elisa [5 ]
Hoshika, Yasutomo [5 ]
De Marco, Alessandra [6 ]
Paoletti, Elena [5 ]
机构
[1] ARGANS, Sophia Antipolis, France
[2] Forestry & Forest Prod Res Inst, Hokkaido Res Ctr, Sapporo, Hokkaido, Japan
[3] Hokkaido Univ, Res Fac Agr, Sapporo, Hokkaido, Japan
[4] Inst Forestry, Lithuanian Res Ctr Agr & Forestry, Girionys, Lithuania
[5] CNR, Sesto Fiorentino, Italy
[6] Italian Natl Agcy New Technol Energy & Sustainabl, Rome, Italy
关键词
Air pollution; Green infrastructure; Green roof; Mitigation; Urban forest; VOLATILE ORGANIC-COMPOUNDS; AIR-POLLUTION REMOVAL; ECOSYSTEM SERVICES PERSPECTIVE; SOUTHERN EUROPEAN FORESTS; SAP FLOW MEASUREMENT; EASTERN DUST STORMS; CLIMATE-CHANGE; HUMAN HEALTH; TROPOSPHERIC OZONE; UNITED-STATES;
D O I
10.1016/j.envpol.2018.08.049
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Outdoor air pollution is considered as the most serious environmental problem for human health, associated with some million deaths worldwide per year. Cities have to cope with the challenges due to poor air quality impacting human health and citizen well-being. According to an analysis in the framework of this study, the annual mean concentrations of tropospheric ozone (O-3) have been increasing by on average 0.16 ppb year(-1) in cities across the globe over the time period 1995-2014. Green urban infrastructure can improve air quality by removing O-3. To efficiently reduce O-3 in cities, it is important to define suitable urban forest management, including proper species selection, with focus on the removal ability of O-3 and other air pollutants, biogenic emission rates, allergenic effects and maintenance requirements. This study reanalyzes the literature to i) quantify O-3 removal by urban vegetation categorized into trees/shrubs and green roofs; ii) rank 95 urban plant species based on the ability to maximize air quality and minimize disservices, and iii) provide novel insights on the management of urban green spaces to maximize urban air quality. Trees showed higher O-3 removal capacity (3.4 g m(-2) year(-1) on average) than green roofs (2.9 g m(-2) year(-1) as average removal rate), with lower installation and maintenance costs (around 10 times). To overcome present gaps and uncertainties, a novel Species specific Air Quality Index (S-AQI) of suitability to air quality improvement is proposed for tree/shrub species. We recommend city planners to select species with an S-AQI>8, i.e. with high O-3 removal capacity, O-3-tolerant, resistant to pests and diseases, tolerant to drought and non-allergenic (e.g. Acer sp., Carpinus sp., Larix decidua, Prunus sp.). Green roofs can be used to supplement urban trees in improving air quality in cities. Urban vegetation, as a cost-effective and nature-based approach, aids in meeting clean air standards and should be taken into account by policy-makers. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:163 / 176
页数:14
相关论文
共 185 条
[1]   Shade trees reduce building energy use and CO2 emissions from power plants [J].
Akbari, H .
ENVIRONMENTAL POLLUTION, 2002, 116 (SUPPL. 1) :S119-S126
[2]   Projected Carbon Dioxide to Increase Grass Pollen and Allergen Exposure Despite Higher Ozone Levels [J].
Albertine, Jennifer M. ;
Manning, William J. ;
DaCosta, Michelle ;
Stinson, Kristina A. ;
Muilenberg, Michael L. ;
Rogers, Christine A. .
PLOS ONE, 2014, 9 (11)
[3]   Modelling the influence of peri-urban trees in the air quality of Madrid region (Spain) [J].
Alonso, Rocio ;
Vivanco, Marta G. ;
Gonzalez-Fernandez, Ignacio ;
Bermejo, Victoria ;
Palomino, Inmaculada ;
Luis Garrido, Juan ;
Elvira, Susana ;
Salvador, Pedro ;
Artinano, Begona .
ENVIRONMENTAL POLLUTION, 2011, 159 (8-9) :2138-2147
[4]   Mapping urban forest leaf area index with airborne lidar using penetration metrics and allometry [J].
Alonzo, Michael ;
Bookhagen, Bodo ;
McFadden, Joseph P. ;
Sun, Alex ;
Roberts, Dar A. .
REMOTE SENSING OF ENVIRONMENT, 2015, 162 :141-153
[5]  
Amann M., 2008, Health risks of ozone from long-range transboundary air pollution
[6]   Sensitivity of stomatal conductance to soil moisture: implications for tropospheric ozone [J].
Anav, Alessandro ;
Proietti, Chiara ;
Menut, Laurent ;
Carnicelli, Stefano ;
De Marco, Alessandra ;
Paoletti, Elena .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2018, 18 (08) :5747-5763
[7]   The role of plant phenology in stomatal ozone flux modeling [J].
Anav, Alessandro ;
Liu, Qiang ;
De Marco, Alessandra ;
Proietti, Chiara ;
Savi, Flavia ;
Paoletti, Elena ;
Piao, Shilong .
GLOBAL CHANGE BIOLOGY, 2018, 24 (01) :235-248
[8]   Comparing concentration-based (AOT40) and stomatal uptake (PODY) metrics for ozone risk assessment to European forests [J].
Anav, Alessandro ;
De Marco, Alessandra ;
Proietti, Chiara ;
Alessandri, Andrea ;
Dell'Aquila, Alessandro ;
Cionni, Irene ;
Friedlingstein, Pierre ;
Khvorostyanov, Dmitry ;
Menut, Laurent ;
Paoletti, Elena ;
Sicard, Pierre ;
Sitch, Stephen ;
Vitale, Marcello .
GLOBAL CHANGE BIOLOGY, 2016, 22 (04) :1608-1627
[9]   Is the Relation Between Ozone and Mortality Confounded by Chemical Components of Particulate Matter? Analysis of 7 Components in 57 US Communities [J].
Anderson, G. Brooke ;
Krall, Jenna R. ;
Peng, Roger D. ;
Bell, Michelle L. .
AMERICAN JOURNAL OF EPIDEMIOLOGY, 2012, 176 (08) :726-732
[10]   An integrated method for assessing climate-related risks and adaptation alternatives in urban areas [J].
Andersson-Skold, Yvonne ;
Thorsson, Sofia ;
Rayner, David ;
Lindberg, Fredrik ;
Janhall, Sara ;
Jonsson, Anna ;
Moback, Ulf ;
Bergman, Ramona ;
Granberg, Mikael .
CLIMATE RISK MANAGEMENT, 2015, 7 :31-50