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Found 9849 publications. Showing page 337 of 394:

Publication  
Year  
Category

Better constraints on sources of carbonaceous aerosols using a combined 14C - macro tracer analysis in a European rural background site.

Gilardoni, S.; Vignati, E.; Cavalli, F.; Putaud, J. P.; Larsen, B. R.; Karl, M.; Stenström, K.; Genberg, J.; Henne, S.; Dentener, F.

2011

Bestemmelse av dissosiasjon av gadolinium fra organiske gadoliniumforbindelser i sjøvann. Sluttrapport. NILU rapport

Vik, A.F.; Uggerud, H.T.; Frogner, B.H.; Vadset, M.; Rostkowski, P.

2017

Best practices for local and regional air quality management. Version 1.

Pisoni, E.; Guerreiro, Cristina; Namdeo, A.; Ortiz, A. G.; Thunis, P.; Janssen, S.; Ketzel, M; Wackenier, L.; Eisold, A.; Volta, M.; Nagl, C.; Monteiro, A.; Eneroth, K.; Fameli, K. M.; Real, E.; Assimakopoulos, V; Pommier, M; Conlan, B.

FAIRMODE is the Forum for Air Quality Modeling created for exchanging experience and results from air quality modeling in the context of the Air Quality Directives (AQD) and for promoting the use of modeling for air quality assessment and management. FAIRMODE is organized in different activities and task, called cross-cutting tasks, to which representative of Member States and experts participate. Among the different activities, one is devoted to Air Quality management practices, called cross-cutting task 5 (CT5). This report is indeed based on the last activities of the FAIRMODE Cross Cutting Task 5 (CT5), focusing, in particular, on elaborating recommendations to support local, regional and national authorities in the use of modelling for the development of air quality plans, defining on how to quantify emission changes associated to a set of measures, and quantifying their impacts in terms of concentration (using an ‘impact pathway approach’ from ‘abatement measure’ to ‘emissions’ to ‘concentrations’). This is done on one side taking advantage of the results already produced by previous FAIRMODE working groups and in coordination with existing activities under other FAIRMODE CTs. On the other side, examples of best practice policies are presented, focusing on Low emission zones: with an example on Antwerp and Copenhagen, Measures on non-exhaust traffic to reduce PM, with an application on Stockholm. How to reduce ozone concentrations, with a focus on local to global contributions. How to build an air quality plan in an integrated way, with an application on Italy. How to evaluate the socio-economic impact of measures, focusing on a case study on UK. The results show how different pollutants should be tackled differently, the importance of integration among different sectoral plans (on emissions, greenhouse gases mitigation, …) and also how other dimensions of the problem (i.e. social aspects) should be considered when building air quality plans.

Publications Office for the European Union

2022

Best Practice Protocol for the validation of Aerosol, Cloud, and Precipitation Profiles (ACPPV)

Vassilis, Amiridis; Marinou, Eleni; Hostetler, Chris; Koopman, Rob; Cecil, Daniel; Moisseev, Dmitri; Tackett, Jason; Gross, Silke; Baars, Holger; Redemann, Jens; Marenco, Franco; Baldini, Luca; Tanelli, Simone; Fielding, Mark; Janisková, Marta; Tanaka, Toshiyuki; O'Connor, Ewan; Fjæraa, Ann Mari; et al., .

Committee on Earth Observation Satellites - CEOS

2025

Beskrivelse og vurdering av forurensning fra kilder utenfor norsk del av Barentshavet. Akvaplan-niva Rapport, APN-421.2871

Pedersen, G.; Heimstad, E.

2003

Beregning av luftkvalitet ved Bjørnheimveien 26

Tønnesen, Dag Arild; Weydahl, Torleif

Prem Partners II A/S has commissioned NILU to evaluate the extent of air quality zones for the present situation concerning a possible new residential building in Bjørnheimveien 26. A Gaussian dispersion model for line sources has been applied (Hiway-2). The road E6 is in this area running over a bridge. If the elevation of E6 and the terrain around Bjørnheimveien is considered, the calculations show a significant reduction in the extend of red and yellow air quality zones at ground level. The effect of shielding existing houses from air pollution by the new building is marginal. The calculations show agreement with the current air quality map for the area when the default assumption of flat terrain is applied.

NILU

2021

Beregning av korrosjonsklasse fra miljøparametere i Fitjar. Lokasjon (59°56’11.5″N 5°19’58.4″Ø)

Grøntoft, Terje

Korrosjonsklasse ble beregnet på lokasjon (59°56'11.5"N 5°19'58.4"Ø) i Fitjar, Vestland, Norge, fra årsgjennomsnitt for miljøparametere etter ISO 9223 og ISO 12944-2. Det ble funnet at korrosjonsklassen med høy sannsynlighet er C3 og at dette i hovedsak er bestemt av våt-tiden på omtrent 4500 timer/år, som gjennomsnitt i perioden 2007-2022. Dette er godt innenfor grensene for C3 når saltavsetningen er < 60 mg Cl-/m2døgn og SO2 konsentrasjonen i luft < 30 µg/m3. Disse betingelsene synes med stor sannsynlighet oppfylt på lokasjonen i Fitjar som årsgjennomsnitt i normalår.

NILU

2022

Ber om fortgang i forskning på corona og luftforurensning

Guerreiro, Cristina; Øvrevik, Johan (interview subjects); Solheim, Pernille; Garden, Vemund Anke (journalists)

2020

Benzo(a)pyrene (BaP) annual mapping. Evaluation of its potential regular updating.

Horálek, Jan; Schreiberova, Marketa; Schneider, Philipp

The report examines the potential regular production of benzo(a)pyrene (BaP) maps at the European scale in line with the operational production of other air quality maps. Stations measuring BaP are relatively scarce at the European scale, so in order to extend the spatial coverage, so-called pseudo station data have been calculated and used together with the actual BaP measurement data. These pseudo station data are derived from PM2.5 or PM10 measurements in locations with no BaP observations.

ETC/ATNI

2021

Benzene in eThekwini. Concentrations in air. NILU OR

Knudsen, S.; Ngema, P.

The report gives recommendation on the storage and the reporting of measurements from odd samples. It is important that the report contains the measurements and description of the measurements for later use. A recommendation for storing the measurements is making a simple database with a library function. The library function will give the path to samples with given key words and where to find them.

2010

Benefit of ozone observations from Sentinel-5P and future Sentinel-4 missions on tropospheric composition

Quesada-Ruiz, Samuel; Attié, Jean-Luc; Lahoz, William A.; Abida, Rachid; Ricaud, Philippe; El Amraoui, Laaziz; Zbinden, Regina; Piacentini, Andrea; Joly, Mathieu; Eskes, Henk; Segers, Arjo; Curier, Lyana; de Haan, Johan; Kujanpää, Jukka; Nijhuis, Albert C. P. O.; Tamminen, Johanna; Timmermans, Renske; Veefkind, Pepijn

2020

Benchmarking of the urban air dispersion model EPISODE.

Sousa Santos, G.; Guerreiro, C.; Sundvor, I.; Tarrasón, L.

2015

Benchmark on methodologies to integrate low-cost sensor networks with official measurements to improve (modelled) air quality maps

Wesseling, Joost; Gressent, Alicia; Namdeo, Anil; Camara, Assa; Roet, David; Lenartz, Fabian; Sousa, Jorge; Joassin, Pascal; Schneider, Philipp; Thunis, Philippe; van Ratingen, Sjoerd; Hellebust, Stig; Janssen, Stijn; Vrankx, Stijn; Rodrigues, Vera; Hendricx, Wouter

2022

Benchmark of nanoparticle tracking analysis on measuring nanoparticle sizing and concentration.

Maguire, C. M.; Sillence, K.; Roesslein, M.; Hannell, C.; Suarez, G.; Sauvain, J.-J.; Capracotta, S.; Contal, S.; Cambier, S.; El Yamani, N.; Dusinska, M.; Dybowska, A.; Vennemann, A.; Cooke, L.; Haase, A.; Luch, A.; Wiemann, M.; Gutleb, A.; Korenstein, R.; Riediker, M.; Wick, P.; Hole, P.; Prina-Mello, A.

2017

Behaviour of indoor aerosols.

Smolik, J.; Moravec, P.; Schwarz, J. Zdimal, V.; Dahlin, E.; Drossinos, Y.; Lapi, M.; Lazaridis, M.

2003

Bedre luftkvalitet, men fortsatt mye svevestøv

Høiskar, Britt Ann Kåstad (interview subject); de Brito Jonassen, Andreas (journalist)

2020

Bedre luft? Pigg av!

Høiskar, Britt Ann Kåstad

2019

Bedre byluft. Prognoser for meteorologi og luftkvalitet i norske byer. met.no report, 15/2008

Ødegaard, V.; Bjergene, N.; Gjerstad, K.I.; Slørdal, L.H.

2009

Bedre byluft. Prognoser for meteorologi og luftkvalitet i norske byer. met.no report, 12/2009

Ødegaard, V.; Slørdal, L.H.; Olsen, T.

2009

Bedre byluft. Prognoser for meteorologi og luftkvalitet i norske byer vinteren 2013-2014. MET report, 17/2014

Denby, B.R.; Slørdal, L.H.; Benedictow, A.C.; Valved, A.S.; Olsen, T.; Kristensen, A.

2014

Bedre byluft. Prognoser for meteorologi og luftkvalitet i norske byer vinteren 2011-2012. met.no report, 10/2013

Ødegaard, V.; Gjerstad, K.I.; Slørdal, L.H.; Abildsnes, H.; Olsen, T.

2013

Bedre byluft. Prognoser for meteorologi og luftkvalitet i norske byer vinteren 2010-2011. met.no report, 8/2011

Ødegaard, V.; Gjerstad, K.I.; Abildsnes, H.; Olsen, T.

2011

Bedre byluft. Prognoser for meteorologi og luftkvalitet i norske byer vinteren 2009-2010. met.no report, 12/2010

Ødegaard, V.; Slørdal, L.H.; Abildsnes, H.; Olsen, T.

2010

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