Impact of Manaus City on the Amazon Green Ocean atmosphere: ozone production, precursor sensitivity and aerosol load

被引:68
作者
Kuhn, U. [1 ]
Ganzeveld, L. [2 ]
Thielmann, A. [1 ]
Dindorf, T. [1 ]
Schebeske, G. [1 ]
Welling, M. [1 ]
Sciare, J. [1 ]
Roberts, G. [1 ]
Meixner, F. X. [1 ,8 ]
Kesselmeier, J. [1 ]
Lelieveld, J. [2 ]
Kolle, O. [3 ]
Ciccioli, P. [4 ]
Lloyd, J. [5 ]
Trentmann, J. [6 ]
Artaxo, P. [7 ]
Andreae, M. O. [1 ]
机构
[1] Max Planck Inst Chem, Biogeochem Dept, D-55128 Mainz, Germany
[2] Max Planck Inst Chem, Atmospher Chem Dept, D-55128 Mainz, Germany
[3] Max Planck Inst Biogeochem, Jena, Germany
[4] Area Ric Roma, Ist Metodol Chim, Monterot, Scalo, Italy
[5] Univ Leeds, Earth & Biosphere Inst, Sch Geog, Leeds LS2 9JT, W Yorkshire, England
[6] Johannes Gutenberg Univ Mainz, Inst Atmospher Phys, Mainz, Germany
[7] Univ Sao Paulo, Inst Fis, BR-01498 Sao Paulo, Brazil
[8] Univ Zimbabwe, Dept Phys, Harare, Zimbabwe
基金
巴西圣保罗研究基金会;
关键词
SECONDARY ORGANIC AEROSOL; CLOUD CONDENSATION NUCLEI; BIOMASS-BURNING EMISSIONS; POWER-PLANT PLUMES; TROPICAL SOUTH-ATLANTIC; TRACE GAS EXCHANGES; RAIN-FOREST; TROPOSPHERIC OZONE; DRY SEASON; PHYSICAL-PROPERTIES;
D O I
10.5194/acp-10-9251-2010
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
As a contribution to the Large-Scale Biosphere-Atmosphere Experiment in Amazonia - Cooperative LBA Airborne Regional Experiment (LBA-CLAIRE-2001) field campaign in the heart of the Amazon Basin, we analyzed the temporal and spatial dynamics of the urban plume of Manaus City during the wet-to-dry season transition period in July 2001. During the flights, we performed vertical stacks of crosswind transects in the urban outflow downwind of Manaus City, measuring a comprehensive set of trace constituents including O-3, NO, NO2, CO, VOC, CO2, and H2O. Aerosol loads were characterized by concentrations of total aerosol number (CN) and cloud condensation nuclei (CCN), and by light scattering properties. Measurements over pristine rainforest areas during the campaign showed low levels of pollution from biomass burning or industrial emissions, representative of wet season background conditions. The urban plume of Manaus City was found to be joined by plumes from power plants south of the city, all showing evidence of very strong photochemical ozone formation. One episode is discussed in detail, where a threefold increase in ozone mixing ratios within the atmospheric boundary layer occurred within a 100 km travel distance downwind of Manaus. Observation-based estimates of the ozone production rates in the plume reached 15 ppb h(-1). Within the plume core, aerosol concentrations were strongly enhanced, with Delta CN/Delta CO ratios about one order of magnitude higher than observed in Amazon biomass burning plumes. Delta CN/Delta CO ratios tended to decrease with increasing transport time, indicative of a significant reduction in particle number by coagulation, and without substantial new particle nucleation occurring within the time/space observed. While in the background atmosphere a large fraction of the total particle number served as CCN (about 60-80% at 0.6% supersaturation), the CCN/CN ratios within the plume indicated that only a small fraction (16 +/- 12 %) of the plume particles were CCN. The fresh plume aerosols showed relatively weak light scattering efficiency. The CO-normalized CCN concentrations and light scattering coefficients increased with plume age in most cases, suggesting particle growth by condensation of soluble organic or inorganic species. We used a Single Column Chemistry and Transport Model (SCM) to infer the urban pollution emission fluxes of Manaus City, implying observed mixing ratios of CO, NOx and VOC. The model can reproduce the temporal/spatial distribution of ozone enhancements in the Manaus plume, both with and without accounting for the distinct (high NOx) contribution by the power plants; this way examining the sensitivity of ozone production to changes in the emission rates of NOx. The VOC reactivity in the Manaus region was dominated by a high burden of biogenic isoprene from the background rainforest atmosphere, and therefore NOx control is assumed to be the most effective ozone abatement strategy. Both observations and models show that the agglomeration of NOx emission sources, like power plants, in a well-arranged area can decrease the ozone production efficiency in the near field of the urban populated cores. But on the other hand remote areas downwind of the city then bear the brunt, being exposed to increased ozone production and N-deposition. The simulated maximum stomatal ozone uptake fluxes were 4 nmol m(-2) s(-1) close to Manaus, and decreased only to about 2 nmol m(-2) s(-1) within a travel distance >1500 km downwind from Manaus, clearly exceeding the critical threshold level for broadleaf trees. Likewise, the simulated N deposition close to Manaus was similar to 70 kg N ha(-1) a(-1) decreasing only to about 30 kg N ha(-1) a(-1) after three days of simulation.
引用
收藏
页码:9251 / 9282
页数:32
相关论文
共 164 条
[1]   Aerosol-cloud-precipitation interactions. Part 1. The nature and sources of cloud-active aerosols [J].
Andreae, M. O. ;
Rosenfeld, D. .
EARTH-SCIENCE REVIEWS, 2008, 89 (1-2) :13-41
[2]   Correlation between cloud condensation nuclei concentration and aerosol optical thickness in remote and polluted regions [J].
Andreae, M. O. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2009, 9 (02) :543-556
[3]  
Andreae M.O., 2001, Contributions to Global Change Research, P59, DOI [DOI 10.17617/3.36, 10.1038/nchembio.2007.5, DOI 10.1038/NCHEMBIO.2007.5]
[4]   Biogeochemical cycling of carbon, water, energy, trace gases, and aerosols in Amazonia: The LBA-EUSTACH experiments [J].
Andreae, MO ;
Artaxo, P ;
Brandao, C ;
Carswell, FE ;
Ciccioli, P ;
da Costa, AL ;
Culf, AD ;
Esteves, JL ;
Gash, JHC ;
Grace, J ;
Kabat, P ;
Lelieveld, J ;
Malhi, Y ;
Manzi, AO ;
Meixner, FX ;
Nobre, AD ;
Nobre, C ;
Ruivo, MDLP ;
Silva-Dias, MA ;
Stefani, P ;
Valentini, R ;
von Jouanne, J ;
Waterloo, MJ .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2002, 107 (D20) :33-1
[5]   Emission of trace gases and aerosols from biomass burning [J].
Andreae, MO ;
Merlet, P .
GLOBAL BIOGEOCHEMICAL CYCLES, 2001, 15 (04) :955-966
[6]   INFLUENCE OF PLUMES FROM BIOMASS BURNING ON ATMOSPHERIC CHEMISTRY OVER THE EQUATORIAL AND TROPICAL SOUTH-ATLANTIC DURING CITE-3 [J].
ANDREAE, MO ;
ANDERSON, BE ;
BLAKE, DR ;
BRADSHAW, JD ;
COLLINS, JE ;
GREGORY, GL ;
SACHSE, GW ;
SHIPHAM, MC .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1994, 99 (D6) :12793-12808
[7]   BIOMASS-BURNING EMISSIONS AND ASSOCIATED HAZE LAYERS OVER AMAZONIA [J].
ANDREAE, MO ;
BROWELL, EV ;
GARSTANG, M ;
GREGORY, GL ;
HARRISS, RC ;
HILL, GF ;
JACOB, DJ ;
PEREIRA, MC ;
SACHSE, GW ;
SETZER, AW ;
DIAS, PLS ;
TALBOT, RW ;
TORRES, AL ;
WOFSY, SC .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1988, 93 (D2) :1509-1527
[8]   Physical and chemical properties of aerosols in the wet and dry seasons in Rondonia, Amazonia -: art. no. 8081 [J].
Artaxo, P ;
Martins, JV ;
Yamasoe, MA ;
Procópio, AS ;
Pauliquevis, TM ;
Andreae, MO ;
Guyon, P ;
Gatti, LV ;
Leal, AMC .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2002, 107 (D20) :LBA49-1
[9]   A study of the NOx dependence of isoprene oxidation -: art. no. D11310 [J].
Barket, DJ ;
Grossenbacher, JW ;
Hurst, JM ;
Shepson, PB ;
Olszyna, K ;
Thornberry, T ;
Carroll, MA ;
Roberts, J ;
Stroud, C ;
Bottenheim, J ;
Biesenthal, T .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2004, 109 (D11) :D113101-12
[10]   The future of the Amazon: new perspectives from climate, ecosystem and social sciences [J].
Betts, Richard A. ;
Malhi, Yadvinder ;
Roberts, J. Timmons .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2008, 363 (1498) :1729-1735