46 results on '"Tack, Frederik"'
Search Results
2. Assessment of the TROPOMI tropospheric NO2 product based on recurrent airborne campaigns
3. Inferring near-surface NO2 concentrations for Belgium using multiple machine learning models and TROPOMI data
4. Cross-evaluating WRF-Chem v4.1.2, TROPOMI, APEX, and in situ NO2 measurements over Antwerp, Belgium
5. Validation of Sentinel-5P TROPOMI tropospheric NO2 products by comparison with NO2 measurements from airborne imaging, ground-based stationary, and mobile car DOAS measurements during the S5P-VAL-DE-Ruhr campaign
6. Supplementary material to "Cross-evaluating WRF-Chem v4.1.2, TROPOMI, APEX and in situ NO2 measurements over Antwerp, Belgium"
7. Cross-evaluating WRF-Chem v4.1.2, TROPOMI, APEX and in situ NO2 measurements over Antwerp, Belgium
8. Horizontal distribution of tropospheric NO2 and aerosols derived by dual-scan multi-wavelength multi-axis differential optical absorption spectroscopy (MAX-DOAS) measurements in Uccle, Belgium
9. Assessment of the TROPOMI tropospheric NO2 product based on recurrent airborne campaigns
10. Investigations of comparison uncertainties for airborne validation of air quality satellite products
11. Comment on amt-2021-303
12. Horizontal distribution of tropospheric NO<sub>2</sub> and aerosols derived by dual-scan multi-wavelength MAX-DOAS measurements in Uccle, Belgium
13. Supplementary material to "Horizontal distribution of tropospheric NO<sub>2</sub> and aerosols derived by dual-scan multi-wavelength MAX-DOAS measurements in Uccle, Belgium"
14. Comment on amt-2021-129
15. Sentinel-5p Validation Campaigns – Planned Activities in 2021-2022
16. Aircraft observations of NO2 and NH3 over selected locations in Germany
17. Aerial Campaigns for Cal/Val purposes in the Context of Copernicus - Survey Results of the Project “Copernicus Cal/Val Solution (CCVS)”
18. On the use of Mobile-DOAS measurements for air quality satellite validation
19. Developing high-resolution simulations of tropospheric NO2 over Flanders using WRF-Chem
20. Assessment of the TROPOMI tropospheric NO<sub>2</sub> product based on airborne APEX observations
21. Intercomparison of MAX-DOAS vertical profile retrieval algorithms: studies on field data from the CINDI-2 campaign
22. Satellite validation strategy assessments based on the AROMAT campaigns
23. Review for amt-2020-148 RC1
24. Review for amt-2020-148 RC2
25. Validation of TROPOMI tropospheric NO2 columns using dual-scan multi-axis differential optical absorption spectroscopy (MAX-DOAS) measurements in Uccle, Brussels
26. Assessment of the TROPOMI tropospheric NO2 product based on airborne APEX observations
27. Review of: Three-dimensional radiative transfer effects on airborne, satellite and ground-based trace gas remote sensing (Schwaerzel et al., 2020)
28. Intercomparison of NO<sub>2</sub>, O<sub>4</sub>, O<sub>3</sub> and HCHO slant column measurements by MAX-DOAS and zenith-sky UV–visible spectrometers during CINDI-2
29. Assessment of the S-5P tropospheric NO2 product based on coincident airborne APEX observations over polluted regions
30. The Sentinel-5 Precursor VAlidatioN and calibraTion Experiment (SVANTE)
31. Validation of TROPOMI tropospheric NO<sub>2</sub> columns using dual-scan MAX-DOAS measurements in Uccle, Brussels
32. Tropospheric NO2 and HCHO derived from dual-scan MAX-DOAS measurements in Uccle (Belgium) and application to S5P/TROPOMI validation
33. The Airborne ROmanian Measurements of Aerosols and Trace gases (AROMAT) campaigns
34. Supplementary material to "The Airborne ROmanian Measurements of Aerosols and Trace gases (AROMAT) campaigns"
35. Intercomparison of NO2, O4, O3 and HCHO slant column measurements by MAX-DOAS and zenith-sky UV-Visible spectrometers during the CINDI-2 campaign
36. Supplementary material to "Intercomparison of NO2, O4, O3 and HCHO slant column measurements by MAX-DOAS and zenith-sky UV-Visible spectrometers during the CINDI-2 campaign"
37. Intercomparison of four airborne imaging DOAS systems for tropospheric NO<sub>2</sub> mapping – the AROMAPEX campaign
38. Author comment to referee #1
39. Author comments to referee #2
40. Intercomparison of four airborne imaging DOAS systems for tropospheric NO2 mapping – The AROMAPEX campaign
41. The Small Whiskbroom Imager for atmospheric compositioN monitorinG (SWING) and its operations from an unmanned aerial vehicle (UAV) during the AROMAT campaign
42. The Small Whiskbroom Imager for atmospheric compositioN monitorinG (SWING) and its operations from an Unmanned Aerial Vehicle (UAV) during the AROMAT campaign
43. High-resolution mapping of the NO<sub>2</sub> spatial distribution over Belgian urban areas based on airborne APEX remote sensing
44. Author comment to referee #2
45. Author comment to referee #1
46. High resolution mapping of the NO<sub>2</sub> spatial distribution over Belgian urban areas based on airborne APEX remote sensing
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