The unprecedented 2017–2018 stratospheric smoke event: decay phase and aerosol properties observed with the EARLINET

dc.contributor.authorMolero, Francisco
dc.date.accessioned2025-01-21T12:19:48Z
dc.date.available2025-01-21T12:19:48Z
dc.date.issued2025-01-21
dc.description.abstractSix months of stratospheric aerosol observations with the European Aerosol Research Lidar Network (EAR LINET) from August 2017 to January 2018 are presented. The decay phase of an unprecedented, record-breaking stratospheric perturbation caused by wildfire smoke is re ported and discussed in terms of geometrical, optical, and mi crophysical aerosol properties. Enormous amounts of smoke were injected into the upper troposphere and lower strato sphere over fire areas in western Canada on 12 August 2017 during strong thunderstorm–pyrocumulonimbus activ ity. The stratospheric fire plumes spread over the entire Northern Hemisphere in the following weeks and months. Twenty-eight European lidar stations from northern Norway to southern Portugal and the eastern Mediterranean moni tored the strong stratospheric perturbation on a continental scale. The main smoke layer (over central, western, south ern, and eastern Europe) was found at heights between 15 and 20 km since September 2017 (about 2 weeks after en tering the stratosphere). Thin layers of smoke were detected at heights of up to 22–23 km. The stratospheric aerosol op tical thickness at 532 nm decreased from values > 0.25 on 21–23 August 2017 to 0.005–0.03 until 5–10 September and was mainly 0.003–0.004 from October to December 2017 and thus was still significantly above the stratospheric back ground (0.001–0.002). Stratospheric particle extinction co efficients (532 nm) were as high as 50–200 Mm−1 until the beginning of September and on the order of 1 Mm−1 (0.5– 5 Mm−1 ) from October 2017 until the end of January 2018. The corresponding layer mean particle mass concentration was on the order of 0.05–0.5 µg m−3 over these months. Soot particles (light-absorbing carbonaceous particles) are effi cient ice-nucleating particles (INPs) at upper tropospheric (cirrus) temperatures and available to influence cirrus for mation when entering the tropopause from above. We esti mated INP concentrations of 50–500 L−1 until the first days in September and afterwards 5–50 L−1 until the end of the year 2017 in the lower stratosphere for typical cirrus for mation temperatures of −55 ◦C and an ice supersaturation level of 1.15. The measured profiles of the particle linear depolarization ratio indicated a predominance of nonspher ical smoke particles. The 532 nm depolarization ratio de creased slowly with time in the main smoke layer from val ues of 0.15–0.25 (August–September) to values of 0.05–0.10 (October–November) and < 0.05 (December–January). The decrease of the depolarization ratio is consistent with aging of the smoke particles, growing of a coating around the solid black carbon core (aggregates), and thus change of the shape towards a spherical form. We found ascending aerosol layer features over the most southern European stations, especially over the eastern Mediterranean at 32–35◦ N, that ascended from heights of about 18–19 to 22–23 km from the beginning of October to the beginning of December 2017 (about 2 km per month). We discuss several transport and lifting mech anisms that may have had an impact on the found aerosol layering structureses_ES
dc.description.sponsorshipThe authors acknowledge support through ACTRIS under grant agreement no. 262 254 and BACCHUS (no. 603445) of the European Commission Seventh Framework Programme (FP7/2007-2013), ACTRIS-2 and EXCELSIOR under grant agreement nos. 654109 and 763643 from Horizon 2020, research and innovation program of the European Commission, and HD(CP)2 under grant agreement no. 01LK1502I with the German Ministry for Education and Research (BMBF). The research leading to these results has also received funding from the H2020 program of the European Commission regarding GRASP ACE (grant agreement no. 778349) and Spanish funding (ref. CGL2014-55230-R, TEC2015-63832-P, CGL2017-90884-REDT, CGL2016-81092-R, and MDM-2016-0600). This work was also supported by Ambizione program of the Swiss National Science Foundation (project no. PZ00P2 168114). The lidar data analyses at University of Warsaw were supported by European Space Agency grant no. 4000119961/16/NL/FF/mg (POLIMOS). Évora lidar observations were funded by the Portuguese Science Foundation (FCT) within the project TOMAQAPA (Ref: PTDC/CTA MET/29678/2017) and the European Union through the European Regional Development Fund, included in COMPETE 2020 (Operational Program Competitiveness and Internationalization) through the ICT project (UID/GEO/04683/2013) with reference POCI-01-0145-FEDER-007690, and also through Interreg V-A Spain – Portugal (POCTEP) program, through the CILIFO project (Ref: 0753_CILIFO_5_E). Cork lidar observations were supported by the Irish Research Council (2014) and Science Foundation Ireland (05/RF/EEB011). The Cyprus observations were supported by the SIROCCO project, which is co-funded by the Republic of Cyprus and Structural Funds of the European Union for Cyprus under the Research & Innovation Foundation grant agreement EXCELLENCE/1216/0217. Haifa lidar observations were funded by the German-Israeli Foundation (GIF grant I-1262 401.10/2014) with support of the Norman and Helen Asher Fund and Ollendorff Minerva Center. The development of the lidar inversion algorithm used to analyze Lille and Leipzig lidar data was supported by the Russian Science Foundation (project 16-17-10241).es_ES
dc.identifier.urihttps://hdl.handle.net/20.500.14855/4204
dc.language.isoenges_ES
dc.relation.ispartofseriesAtmos. Chem. Phys., 19, 15183–15198, 2019;
dc.rights.accessRightsopen accesses_ES
dc.subjectaerosolses_ES
dc.subjectlidares_ES
dc.titleThe unprecedented 2017–2018 stratospheric smoke event: decay phase and aerosol properties observed with the EARLINETes_ES
dc.typejournal articlees_ES

Files

Original bundle

Now showing 1 - 1 of 1
Loading...
Thumbnail Image
Name:
Barrs_The unprecented 2017 2018 stratospheric smoke event_ACP2019.pdf
Size:
2.85 MB
Format:
Adobe Portable Document Format