Arid
DOI10.5194/bg-13-6519-2016
Bioavailable atmospheric phosphorous supply to the global ocean: a 3-D global modeling study
Myriokefalitakis, Stelios1; Nenes, Athanasios2,3,4,5; Baker, Alex R.6; Mihalopoulos, Nikolaos1,5; Kanakidou, Maria1
通讯作者Myriokefalitakis, Stelios ; Kanakidou, Maria
来源期刊BIOGEOSCIENCES
ISSN1726-4170
EISSN1726-4189
出版年2016
卷号13期号:24页码:6519-6543
英文摘要

The atmospheric cycle of phosphorus (P) is parameterized here in a state-of-the-art global 3-D chemistry transport model, taking into account primary emissions of total P (TP) and soluble P (DP) associated with mineral dust, combustion particles from natural and anthropogenic sources, bioaerosols, sea spray and volcanic aerosols. For the present day, global TP emissions are calculated to be roughly 1.33 Tg-P yr(-1), with the mineral sources contributing more than 80% to these emissions. The P solubilization from mineral dust under acidic atmospheric conditions is also parameterized in the model and is calculated to contribute about one-third (0.14 Tg-P yr(-1) /of the global DP atmospheric source. To our knowledge, a unique aspect of our global study is the explicit modeling of the evolution of phosphorus speciation in the atmosphere. The simulated present-day global annual DP deposition flux is 0.45 Tg-P yr(-1) (about 40% over oceans), showing a strong spatial and temporal variability. Present-day simulations of atmospheric P aerosol concentrations and deposition fluxes are satisfactory compared with available observations, indicating however an underestimate of about 70% on current knowledge of the sources that drive the P atmospheric cycle. Sensitivity simulations using preindustrial (year 1850) anthropogenic and biomass burning emission scenarios showed a present-day increase of 75% in the P solubilization flux from mineral dust, i.e., the rate at which P is converted into soluble forms, compared to preindustrial times, due to increasing atmospheric acidity over the last 150 years. Future reductions in air pollutants due to the implementation of air-quality regulations are expected to decrease the P solubilization flux from mineral dust by about 30% in the year 2100 compared to the present day. Considering, however, that all the P contained in bioaerosols is readily available for uptake by marine organisms, and also accounting for all other DP sources, a total bioavailable P flux of about 0.17 Tg-P yr(-1) to the oceans is derived. Our calculations further show that in some regions more than half of the bioavailable P deposition flux to the ocean can originate from biological particles, while this contribution is found to maximize in summer when atmospheric deposition impact on the marine ecosystem is the highest due to ocean stratification. Thus, according to this global study, a largely unknown but potentially important role of terrestrial bioaerosols as suppliers of bioavailable P to the global ocean is also revealed. Overall, this work provides new insights to the atmospheric P cycle by demonstrating that biological materials are important carriers of bioavailable P, with very important implications for past and future responses of marine ecosystems to global change.


类型Article
语种英语
国家Greece ; USA ; England
收录类别SCI-E
WOS记录号WOS:000391562300001
WOS关键词SECONDARY ORGANIC AEROSOL ; SULFATE CONCENTRATIONS ; MULTIMODEL EVALUATION ; LEVANTINE BASIN ; DESERT DUST ; FRESH-WATER ; SEA-SALT ; NITROGEN ; DEPOSITION ; TRANSPORT
WOS类目Ecology ; Geosciences, Multidisciplinary
WOS研究方向Environmental Sciences & Ecology ; Geology
资源类型期刊论文
条目标识符http://119.78.100.177/qdio/handle/2XILL650/191761
作者单位1.Univ Crete, Dept Chem, Environm Chem Proc Lab, POB 2208, Iraklion 70013, Greece;
2.FORTH, Inst Chem Engn Sci ICE HT, POB 1414, Patras 26504, Greece;
3.Georgia Inst Technol, Sch Earth & Atmospher Sci, 311 Ferst Dr, Atlanta, GA 30332 USA;
4.Georgia Inst Technol, Sch Chem & Biomol Engn, 311 Ferst Dr, Atlanta, GA 30332 USA;
5.Natl Observ Athens, Inst Environm Res & Sustainable Dev, Athens, Greece;
6.Univ East Anglia, Ctr Ocean & Atmospher Sci, Sch Environm Sci, Norwich NR4 7TJ, Norfolk, England
推荐引用方式
GB/T 7714
Myriokefalitakis, Stelios,Nenes, Athanasios,Baker, Alex R.,et al. Bioavailable atmospheric phosphorous supply to the global ocean: a 3-D global modeling study[J],2016,13(24):6519-6543.
APA Myriokefalitakis, Stelios,Nenes, Athanasios,Baker, Alex R.,Mihalopoulos, Nikolaos,&Kanakidou, Maria.(2016).Bioavailable atmospheric phosphorous supply to the global ocean: a 3-D global modeling study.BIOGEOSCIENCES,13(24),6519-6543.
MLA Myriokefalitakis, Stelios,et al."Bioavailable atmospheric phosphorous supply to the global ocean: a 3-D global modeling study".BIOGEOSCIENCES 13.24(2016):6519-6543.
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