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Found 9763 publications. Showing page 330 of 391:

Publication  
Year  
Category

Brominated Flame Retardants in Antarctic Air in the Vicinity of Two All-Year Research Stations

Nash, Susan M. Bengtson; Wild, Seanan; Broomhall, Sara; Bohlin-Nizzetto, Pernilla

MDPI

2021

Brominated flame retardants (BFR) in the Nordic environment. TemaNord, 2011:528

Schlabach, M.; Remberger, M.; Brorström-Lunden, E.; Norström, K.; Kaj, L.; Andersson, H.; Herzke, D.; Borgen, A.; Harju, M.

2011

2001

Brominated and Chlorinated Flame Retardants in the Air and Snowpack of Northern Norway

Halsall, Crispin; Bertrand, Olivier; Axel, Moller; Xie, Zhiyong; Ebinghaus, Ralf; Herzke, Dorte; Heimstad, Eldbjørg Sofie; Huber, Sandra

2023

BrO measurements from GOME and from the ground: an intercomparison study. Air pollution research report, 73

Richter, A.; Roozendael, M.V.; Wagner, T.; Lambert, J.-C.; Arlander, D.W.; Burrows, J.P.; Fayt, C.; Johnston, P.V.; Jones, R.; Tørnkvist, K.K.; Kreher, K.; Pfeilsticker, K.; Platt, U.; Pundt, I.; South, A.; Wittrock, F.

2000

Britisk alarm: Avvises i Norge

Tørseth, Kjetil (interview subject); Naustdal, Irene Dafinceska; Mogen, Trym (journalists)

2024

Bringing assessments from committees to research communities. The HENVINET perspective. NILU PP

Bartonova, A.; Keune, H.; Fucic, A.; Gutleb, A.C.; van den Hazel, P.; Koppe J.; the HENVINET consortium.

2013

Bridging the gap between policy and science in assessing the health status of marine ecosystems.

Borja, A.; Elliott, M.; Snelgrove P.V.R.; Austen, M.C.; Berg, T.; Cochrane, S.; Carstensen, J.; Danovaro, R.; Greenstreet, S.; Heiskanen, A.-S.; Lynam, C.P.; Mea, M.; Newton, A.; Patrício, J.; Uusitalo, L.; Uyarra, M.C.; Wilson, C.

2016

Bridge to Copernicus. Final project report. NILU OR

Stebel, K.; Fjæraa, A.M.; Schneider, P.; Svendby, T.

NILU has a mandate to monitor air quality and particularly its changes over time, both nationally through Miljødirektoratet (MD) and internationally through the European Monitoring and Evaluation Programme (EMEP). Satellite data related to atmospheric composition are increasingly used for monitoring as they provide long time series of spatially continuous observations. It is therefore essential for NILU to begin preparing for the upcoming Copernicus missions. Here, we evaluate methane products from AIRS, TES, TANSO-FTS and SCIAMACHY as added value for GHG monitoring in Norway and Svalbard. As expected, due to the low sensitivity of the sensors to ground-level Artic large deviations are seen when comparing to in situ data from Birkenes and Ny-Ålesund. Higher level products (L4), combining satellite and ground-based information, seem more appropriate for future reporting purposes. Further, we investigated the usability of the current set of long-term operational ground-based MAX-DOAS stations worldwide for inter-comparing their NO2 observations to those of satellite-based instruments, in particular OMI and GOME-2A. The two data sources agree very well for sites located in rural, non-polluted regions. For sites located in polluted areas we found strong systematic biases, large random errors, or slightly shifting systematic biases. The systematic biases can be explained primarily by the strong spatial gradients in NO2 levels in urban areas in conjunction with the large differences in the spatial representativity of the measurements. We evaluated the possibility to use the now relatively long time series of MAX-DOAS observations to fit a statistical trend model and to directly compare the resulting trends to those obtained for the satellite-based time series for the same area and time period. It was found that the sites with approximately 50 months of valid data for both data sources showed quite similar long-term trends and that sites with fewer than 30 months of valid data exhibited significant discrepancies in the resulting trends.

2014

Brannskum i fisk og mennesker.

Hanssen, L.; Herzke, D.; Nikiforov, V.

2017

Brann i tropiske skoger påvirker ikke bare skogen

Solbakken, Christine Forsetlund

Norges forskningsråd

2025

2005

Boundary layer aerosol chemistry during TexAQS/GoMACCS 2006: Insights into aerosol sources and transformation processes.

Bates, T.S.; Quinn, P.K.; Coffman, D.; Schulz, K.; Covert, D.S.; Johnson, J.E.; Williams, E.J.; Lerner, B.M.; Angevine, W.M.; Tucker, S.C.; Brewer, W.A.; Stohl, A.

2008

Bottom RedOx Model (BROM v.1.1): a coupled benthic-pelagic model for simulation of water and sediment biogeochemistry.

Yakushev, E. V.; Protsenko, E. A.; Bruggeman, J.; Wallhead, P.; Pakhomova, S. V.; Yakubov, S. Kh.; Bellerby, R. G. J.; Couture, R.-M.

2017

Blood plasma clinical-chemical parameters as biomarker endpoints for organohalogen contaminant exposure in Norwegian raptor nestlings.

Sonne, C.; Bustnes, J.O.; Herzke, D.; Jaspers, V.L.B.; Covaci, A.; Eulaers, I.; Halley, D.J.; Moum, T.; Ballesteros, M.; Eens, M.; Ims, R.A.; Hanssen,S.A.; Erikstad, K.E.; Johnsen, T.V.; Rigét, F.F.; Jensen, A.L.; Kjelgaard-Hansen, M.

2012

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