globalchange  > 气候变化事实与影响
DOI: 10.1016/j.atmosenv.2017.03.004
Scopus记录号: 2-s2.0-85014935389
论文题名:
A model to relate wind tunnel measurements to open field odorant emissions from liquid area sources
作者: Lucernoni F; , Capelli L; , Busini V; , Sironi S
刊名: Atmospheric Environment
ISSN: 0168-2563
EISSN: 1573-515X
出版年: 2017
卷: 157
起始页码: 10
结束页码: 17
语种: 英语
英文关键词: Dispersion modelling ; Odour emissions ; Passive area sources ; Specific emission rate ; Volatilization from liquid pools
Scopus关键词: Acetone ; Boundary layers ; Fluid dynamics ; Forced convection ; Ketones ; Laminar boundary layer ; Liquids ; Mass transfer ; Odor removal ; Odors ; Particulate emissions ; Waste treatment ; Wastewater treatment ; Water pollution ; Water treatment ; Wind ; Wind tunnels ; Dispersion Modelling ; Emission rates ; Liquid pool ; Odour emissions ; Passive area sources ; Fluids ; 2 butanone ; acetone ; carbon ; atmospheric modeling ; atmospheric pollution ; dispersion ; emission ; equipment ; experimental study ; liquid ; mass transfer ; measurement method ; odor ; volatilization ; wind tunnel ; wind velocity ; Article ; boundary layer ; carbon footprint ; computational fluid dynamics ; controlled study ; dispersion ; liquid ; mass ; odor ; open field test ; priority journal ; thermodynamics ; velocity ; volatilization ; wind
Scopus学科分类: Environmental Science: Water Science and Technology ; Earth and Planetary Sciences: Earth-Surface Processes ; Environmental Science: Environmental Chemistry
英文摘要: Waste Water Treatment Plants are known to have significant emissions of several pollutants and odorants causing nuisance to the near-living population. One of the purposes of the present work is to study a suitable model to evaluate odour emissions from liquid passive area sources. First, the models describing volatilization under a forced convection regime inside a wind tunnel device, which is the sampling device that typically used for sampling on liquid area sources, were investigated. In order to relate the fluid dynamic conditions inside the hood to the open field and inside the hood a thorough study of the models capable of describing the volatilization phenomena of the odorous compounds from liquid pools was performed and several different models were evaluated for the open field emission. By means of experimental tests involving pure liquid acetone and pure liquid butanone, it was verified that the model more suitable to describe precisely the volatilization inside the sampling hood is the model for the emission from a single flat plate in forced convection and laminar regime, with a fluid dynamic boundary layer fully developed and a mass transfer boundary layer not fully developed. The proportionality coefficient for the model was re-evaluated in order to account for the specific characteristics of the adopted wind tunnel device, and then the model was related with the selected model for the open field thereby computing the wind speed at 10�m that would cause the same emission that is estimated from the wind tunnel measurement furthermore, the field of application of the proposed model was clearly defined for the considered models during the project, discussing the two different kinds of compounds commonly found in emissive liquid pools or liquid spills, i.e. gas phase controlled and liquid phase controlled compounds. Lastly, a discussion is presented comparing the presented approach for emission rates recalculation in the field, with other approaches possible, i.e. the ones relying on the recalculation of the wind speed at the emission level, instead of the wind speed that would cause in the open field the same emission that is measured with the hood. � 2017 Elsevier Ltd
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/82766
Appears in Collections:气候变化事实与影响

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作者单位: Politecnico di Milano, Department of Chemistry, Materials and Chemical Engineering, “Giulio Natta” - Piazza L. da Vinci 32, Milano, Italy

Recommended Citation:
Lucernoni F,, Capelli L,, Busini V,et al. A model to relate wind tunnel measurements to open field odorant emissions from liquid area sources[J]. Atmospheric Environment,2017-01-01,157
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