Matches in SemOpenAlex for { <https://semopenalex.org/work/W3045947458> ?p ?o ?g. }
- W3045947458 endingPage "141266" @default.
- W3045947458 startingPage "141266" @default.
- W3045947458 abstract "This work evaluates the applicability of the reference protocol EUSAAR2 in the Semi-Continuous OCEC analyzer under two environments, an urban background site influenced by traffic emissions and a regional background site. The comparison of the 24-h averaged OC and EC measurements of the Semi-Continuous analyzer with the OC and EC concentrations determined offline in PM2.5 24 h filters yielded very good agreement for both denuded and undenuded samples. In the urban background site, the regression for EC yielded a slope of 0.93 and 1.04 (b = 0.07 and 0.05, R2 = 0.83 and 0.84), for denuded and undenuded samples respectively. The slopes of OC regressions were 0.99 (b = −0.18, R2 = 0.81) for the low volume and 0.93 (b = 0.12, R2 = 0.84) for the high volume samples. In the regional background site, the slopes of the EC regression with the denuded and undenuded samples was 0.91 and 1.02 correspondingly (b = 0 and − 0.03, R2 = 0.77 and 0.89). The regression of OC had slopes close to 1; 1.03 for the high volume and 0.95 for the low volume sampler (b = 0.08 and 0.26, R2 = 0.78 and 0.78). BC measurements obtained by an aethalometer and MAAP were in very good agreement with EC at both sampling sites. BC levels were consistently higher than EC (slope of the regression aethalometer BC vs EC slope a = 1.2, intercept b = 0.19, R2 = 0.79, for the urban background site and a = 1.9, b = −0.04, R2 = 0.94, for the regional site, slope MAAP BC vs EC a = 1.2, b = 0.06, R2 = 0.94, for the urban background site and 1.7, b = −0.03, R2 = 0.96, for the regional site). This confirms the need of using the site-specific mass absorption cross section (MAC) instead of the ones provided by manufacturers for the conversion of absorption units into BC mass concentration. BC data correlated very well with the optical EC obtained from the semi-continuous OCEC analyzer (a = 1.3, b = 0.16, R2 = 0.80 for the urban background site and a = 1.7, b = 0.009, R2 = 0.94 for the regional site, respectively). The comparison of OC concentrations by the Semi-Continuous Sunset analyzer with organic aerosol online measurements by ACSM showed strong correlations. The ratio OA/OC was 1.9 and 2.3 for the urban background and regional sites. The accumulation of refractory material on the filter, because of prolonged periods of sampling, caused a shift of the split point to the inert mode and changes on PC formation and evolution. Extreme dust outbreaks lead to the overestimation of OC due to the evolution of carbonate in the He mode. Generally, the Sunset Semi-Continuous OCEC analyzer with EUSAAR2 provided robust and consistent measurements with offline thermal-optical analysis." @default.
- W3045947458 created "2020-08-03" @default.
- W3045947458 creator A5024124541 @default.
- W3045947458 creator A5028276378 @default.
- W3045947458 creator A5028440016 @default.
- W3045947458 creator A5031355054 @default.
- W3045947458 creator A5043988476 @default.
- W3045947458 creator A5045780272 @default.
- W3045947458 creator A5056012765 @default.
- W3045947458 creator A5060802533 @default.
- W3045947458 creator A5078933851 @default.
- W3045947458 creator A5080231802 @default.
- W3045947458 date "2020-12-01" @default.
- W3045947458 modified "2023-10-18" @default.
- W3045947458 title "Evaluation of the Semi-Continuous OCEC analyzer performance with the EUSAAR2 protocol" @default.
- W3045947458 cites W1897544916 @default.
- W3045947458 cites W1907369419 @default.
- W3045947458 cites W1975417144 @default.
- W3045947458 cites W1977533770 @default.
- W3045947458 cites W1979710475 @default.
- W3045947458 cites W1981222959 @default.
- W3045947458 cites W1989714516 @default.
- W3045947458 cites W1996153497 @default.
- W3045947458 cites W1997573841 @default.
- W3045947458 cites W1999683643 @default.
- W3045947458 cites W2003493363 @default.
- W3045947458 cites W2014149874 @default.
- W3045947458 cites W2015392579 @default.
- W3045947458 cites W2027769524 @default.
- W3045947458 cites W2037831681 @default.
- W3045947458 cites W2040359857 @default.
- W3045947458 cites W2045052026 @default.
- W3045947458 cites W2047364731 @default.
- W3045947458 cites W2054374392 @default.
- W3045947458 cites W2058409390 @default.
- W3045947458 cites W2064957235 @default.
- W3045947458 cites W2065067911 @default.
- W3045947458 cites W2070364167 @default.
- W3045947458 cites W2073376626 @default.
- W3045947458 cites W2074912117 @default.
- W3045947458 cites W2078718376 @default.
- W3045947458 cites W2083988711 @default.
- W3045947458 cites W2088243118 @default.
- W3045947458 cites W2095809722 @default.
- W3045947458 cites W2104905627 @default.
- W3045947458 cites W2112632155 @default.
- W3045947458 cites W2114191971 @default.
- W3045947458 cites W2121749506 @default.
- W3045947458 cites W2127510753 @default.
- W3045947458 cites W2134671121 @default.
- W3045947458 cites W2135155444 @default.
- W3045947458 cites W2137382327 @default.
- W3045947458 cites W2144923407 @default.
- W3045947458 cites W2150903856 @default.
- W3045947458 cites W2162047162 @default.
- W3045947458 cites W2169662202 @default.
- W3045947458 cites W2195667522 @default.
- W3045947458 cites W2310180078 @default.
- W3045947458 cites W2478850793 @default.
- W3045947458 cites W2507561500 @default.
- W3045947458 cites W2522163740 @default.
- W3045947458 cites W2599855932 @default.
- W3045947458 cites W2605343912 @default.
- W3045947458 cites W2609634512 @default.
- W3045947458 cites W2738407541 @default.
- W3045947458 cites W2762176476 @default.
- W3045947458 cites W2767226332 @default.
- W3045947458 cites W2794358773 @default.
- W3045947458 cites W2801550069 @default.
- W3045947458 cites W2898890166 @default.
- W3045947458 cites W2946705445 @default.
- W3045947458 cites W2949948697 @default.
- W3045947458 doi "https://doi.org/10.1016/j.scitotenv.2020.141266" @default.
- W3045947458 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/32777506" @default.
- W3045947458 hasPublicationYear "2020" @default.
- W3045947458 type Work @default.
- W3045947458 sameAs 3045947458 @default.
- W3045947458 citedByCount "16" @default.
- W3045947458 countsByYear W30459474582021 @default.
- W3045947458 countsByYear W30459474582022 @default.
- W3045947458 countsByYear W30459474582023 @default.
- W3045947458 crossrefType "journal-article" @default.
- W3045947458 hasAuthorship W3045947458A5024124541 @default.
- W3045947458 hasAuthorship W3045947458A5028276378 @default.
- W3045947458 hasAuthorship W3045947458A5028440016 @default.
- W3045947458 hasAuthorship W3045947458A5031355054 @default.
- W3045947458 hasAuthorship W3045947458A5043988476 @default.
- W3045947458 hasAuthorship W3045947458A5045780272 @default.
- W3045947458 hasAuthorship W3045947458A5056012765 @default.
- W3045947458 hasAuthorship W3045947458A5060802533 @default.
- W3045947458 hasAuthorship W3045947458A5078933851 @default.
- W3045947458 hasAuthorship W3045947458A5080231802 @default.
- W3045947458 hasBestOaLocation W30459474581 @default.
- W3045947458 hasConcept C105795698 @default.
- W3045947458 hasConcept C113196181 @default.
- W3045947458 hasConcept C120665830 @default.
- W3045947458 hasConcept C121332964 @default.
- W3045947458 hasConcept C140793950 @default.