One year of radon, benzene and carbon monoxide (CO) concentrations were analysed to characterise the combined influences of variations in traffic density and meteorological conditions on urban air quality in Bern, Switzerland. A recently developed radon-based stability categorisation technique was adapted to account for seasonal changes in day length and reduction in the local radon flux due to snow/ice cover and high soil moisture. Diurnal pollutant cycles were shown to result from an interplay between variations in surface emissions (traffic density), the depth of the nocturnal atmospheric mixing layer (dilution) and local horizontal advection of cleaner air from outside the central urban/industrial area of this small compact inland city. Substantial seasonal differences in the timing and duration of peak pollutant concentrations in the diurnal cycle were attributable to changes in day length and the switching to/from daylight-savings time in relation to traffic patterns. In summer, average peak benzene concentrations (0.62 ppb) occurred in the morning and remained above 0.5 ppb for 2 hours, whereas in winter average peak concentrations (0.85 ppb) occurred in the evening and remained above 0.5 ppb for 9 hours. Under stable conditions in winter, average peak benzene concentrations (1.1 ppb) were 120% higher than for well-mixed conditions (0.5 ppb). By comparison, summertime peak benzene concentrations increased by 53% from well-mixed (0.45 ppb) to stable nocturnal conditions (0.7 ppb). An idealised box model incorporating a simple advection term was used to derive a nocturnal mixing length scale based on radon, and then inverted to simulate diurnal benzene and CO emission variations at the city centre. This method effectively removes the influences of local horizontal advection and stability-related vertical dilution from the emissions signal, enabling a direct comparison with hourly traffic density. With the advection term calibrated appropriately, excellent results were obtained, with high regression coefficients in spring and summer for both benzene (r2 ~0.90–0.96) and CO (r2 ~0.88–0.98) in the two highest stability categories. Weaker regressions in winter likely indicate additional contributions from combustion sources unrelated to vehicular emissions. Average vehicular emissions during daylight hours were estimated to be around 0.503 (542) kg km−2 h−1 for benzene (CO) in the Bern city centre.
from #AlexandrosSfakianakis via Alexandros G.Sfakianakis on Inoreader http://ift.tt/2z6MJiv
via IFTTT
Εγγραφή σε:
Σχόλια ανάρτησης (Atom)
Δημοφιλείς αναρτήσεις
-
Pulmonary complications post hematopoietic stem cell transplant in dyskeratosis congenita: analysis of oxidative stress in lung fibrobl...
-
Masters Thesis Proposal Outline INTRODUCTION (1 PAGE) • What is the general topic area • Why this topic is relevant/important (how important...
-
Be a Responsible Dog Owner . Among companion animals, dogs are unmatched in their devotion, loyalty and friendship to humankind. Anyone who ...
-
Nothing is impossible, the word itself says 'I'm possible'! - Audrey Hepburn quotes from from #AlexandrosSfakianakis via Alexa...
-
Publication date: Available online 5 April 2017 Source: European Annals of Otorhinolaryngology, Head and Neck Diseases Author(s): C.A. Ri...
-
Abstract We present a case of small coronary sinus defect detected after transcatheter device closure of a large secundum atrial septal de...
-
Background. Antitumor necrosis factor (anti-TNF) therapy is a highly effective but costly treatment for inflammatory bowel disease (IBD). Me...
-
The Unusual Presentation of a Myxoma within the Sphenoid Sinus: Case Report and Review of the Literature. World Neurosurg. 2017 Apr 19...
-
Abstract Purpose of Review Recent evidence suggests that the developmental signaling pathways—Wnt, Notch, and Hedgehog—are critically in...
Δεν υπάρχουν σχόλια:
Δημοσίευση σχολίου