Hygroscopic growth study in the framework of EARLINET during the SLOPE I campaign: synergy of remote sensing and in situ instrumentation

dc.contributor.authorBEDOYA-VELASQUEZ, ANDRES E.
dc.contributor.authorNAVAS-GUZMAN, FRANCISCO
dc.contributor.authorGRANADOS-MUNOZ, MARIA J.
dc.contributor.authorTITOS, GLORIA
dc.contributor.authorROMAN, ROBERTO
dc.contributor.authorCASQUERO-VERA, JUAN A.
dc.contributor.authorORTIZ-AMEZCUA, PABLO
dc.contributor.authorBENAVENT-OLTRA, JOSE A.
dc.contributor.authorMOREIRA, GREGORI de A.
dc.contributor.authorMONTILLA-ROSERO, ELENA
dc.contributor.authorHOYOS, CARLOS D.
dc.contributor.authorARTINANO, BEGONA
dc.contributor.authorCOZ, ESTHER
dc.contributor.authorOLMO-REYES, FRANCISCO J.
dc.contributor.authorALADOS-ARBOLEDAS, LUCAS
dc.contributor.authorGUERRERO-RASCADO, JUAN L.
dc.coverageInternacionalpt_BR
dc.date.accessioned2018-06-05T12:27:00Z
dc.date.available2018-06-05T12:27:00Z
dc.date.issued2018pt_BR
dc.description.abstractThis study focuses on the analysis of aerosol hygroscopic growth during the Sierra Nevada Lidar AerOsol Profiling Experiment (SLOPE I) campaign by using the synergy of active and passive remote sensors at the ACTRIS Granada station and in situ instrumentation at a mountain station (Sierra Nevada, SNS). To this end, a methodology based on simultaneous measurements of aerosol profiles from an EARLINET multi-wavelength Raman lidar (RL) and relative humidity (RH) profiles obtained from a multi-instrumental approach is used. This approach is based on the combination of calibrated water vapor mixing ratio (r) profiles from RL and continuous temperature profiles from a microwave radiometer (MWR) for obtaining RH profiles with a reasonable vertical and temporal resolution. This methodology is validated against the traditional one that uses RH from co-located radiosounding (RS) measurements, obtaining differences in the hygroscopic growth parameter (γ) lower than 5 % between the methodology based on RS and the one presented here. Additionally, during the SLOPE I campaign the remote sensing methodology used for aerosol hygroscopic growth studies has been checked against Mie calculations of aerosol hygroscopic growth using in situ measurements of particle number size distribution and submicron chemical composition measured at SNS. The hygroscopic case observed during SLOPE I showed an increase in the particle backscatter coefficient at 355 and 532 nm with relative humidity (RH ranged between 78 and 98 %), but also a decrease in the backscatter-related Ångström exponent (AE) and particle linear depolarization ratio (PLDR), indicating that the particles became larger and more spherical due to hygroscopic processes. Vertical and horizontal wind analysis is performed by means of a co-located Doppler lidar system, in order to evaluate the horizontal and vertical dynamics of the air masses. Finally, the Hänel parameterization is applied to experimental data for both stations, and we found good agreement on γ measured with remote sensing (γ532 = 0.48 ± 0.01 and γ355 = 0.40 ± 0.01) with respect to the values calculated using Mie theory (γ532 = 0.53 ± 0.02 and γ355 = 0.45 ± 0.02), with relative differences between measurements and simulations lower than 9 % at 532 nm and 11 % at 355 nm.pt_BR
dc.format.extent7001-7017pt_BR
dc.identifier.citationBEDOYA-VELASQUEZ, ANDRES E.; NAVAS-GUZMAN, FRANCISCO; GRANADOS-MUNOZ, MARIA J.; TITOS, GLORIA; ROMAN, ROBERTO; CASQUERO-VERA, JUAN A.; ORTIZ-AMEZCUA, PABLO; BENAVENT-OLTRA, JOSE A.; MOREIRA, GREGORI de A.; MONTILLA-ROSERO, ELENA; HOYOS, CARLOS D.; ARTINANO, BEGONA; COZ, ESTHER; OLMO-REYES, FRANCISCO J.; ALADOS-ARBOLEDAS, LUCAS; GUERRERO-RASCADO, JUAN L. Hygroscopic growth study in the framework of EARLINET during the SLOPE I campaign: synergy of remote sensing and in situ instrumentation. <b>Atmospheric Chemistry and Physics</b>, v. 18, n. 10, p. 7001-7017, 2018. DOI: <a href="https://dx.doi.org/10.5194/acp-18-7001-2018">10.5194/acp-18-7001-2018</a>. Disponível em: http://repositorio.ipen.br/handle/123456789/28892.
dc.identifier.doi10.5194/acp-18-7001-2018pt_BR
dc.identifier.fasciculo10pt_BR
dc.identifier.issn1680-7316pt_BR
dc.identifier.percentilfi90.56en
dc.identifier.percentilfiCiteScore96.00
dc.identifier.urihttp://repositorio.ipen.br/handle/123456789/28892
dc.identifier.vol18pt_BR
dc.relation.ispartofAtmospheric Chemistry and Physics
dc.rightsopenAccesspt_BR
dc.subjecthygroscopicity
dc.subjectoptical radar
dc.subjectatmospheric circulation
dc.subjectaerosols
dc.titleHygroscopic growth study in the framework of EARLINET during the SLOPE I campaign: synergy of remote sensing and in situ instrumentationpt_BR
dc.typeArtigo de periódicopt_BR
dspace.entity.typePublication
ipen.autorGREGORI DE ARRUDA MOREIRA
ipen.codigoautor10204
ipen.contributor.ipenauthorGREGORI DE ARRUDA MOREIRA
ipen.date.recebimento18-06pt_BR
ipen.identifier.fi5.668pt_BR
ipen.identifier.fiCiteScore9.7
ipen.identifier.ipendoc24676pt_BR
ipen.identifier.iwosWoSpt_BR
ipen.range.fi4.500 - 5.999
ipen.range.percentilfi75.00 - 100.00
ipen.type.genreArtigo
relation.isAuthorOfPublication539c9881-45aa-4cc9-aefe-a503026f1567
relation.isAuthorOfPublication.latestForDiscovery539c9881-45aa-4cc9-aefe-a503026f1567
sigepi.autor.atividadeMOREIRA, GREGORI DE A.:10204:920:Npt_BR

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