The browser you are using is not supported by this website. All versions of Internet Explorer are no longer supported, either by us or Microsoft (read more here: https://www.microsoft.com/en-us/microsoft-365/windows/end-of-ie-support).

Please use a modern browser to fully experience our website, such as the newest versions of Edge, Chrome, Firefox or Safari etc.

Photo of Axel Eriksson

Axel Eriksson

Associate senior lecturer

Photo of Axel Eriksson

Investigation of the absorption Ångström exponent and its relation to physicochemical properties for mini-CAST soot

Author

  • Sandra Török
  • Vilhelm B. Malmborg
  • Johan Simonsson
  • Axel Eriksson
  • Johan Martinsson
  • Manu Mannazhi
  • Joakim Pagels
  • Per Erik Bengtsson

Summary, in English

In this work, a mini-CAST soot generator was used to produce soot with different optical and physicochemical characteristics. Absorption Ångström exponents (AAE) expressing the absorption wavelength dependence were assessed by multiwavelength in-situ and filter-based (aethalometer) laser extinction. The two optical techniques showed good agreement. For the chosen mini-CAST operating conditions, AAEs between 1 and 3.5 were found. Soot with high mass-fractions of organic carbon (OC) and pyrolytic carbon (PC) determined with thermal optical analysis were associated with AAEs significantly higher than 1. Heating to 250 and 500°C removed the majority of polycyclic aromatic hydrocarbons. However, the thermal-optical analysis revealed that OC and PC were abundant in the soot with AAE > 2 also after heating the aerosol. Analysis of mass absorption cross section ratios for elemental carbon and OC indicated that elevated AAEs also after heating to 500°C could be related to persistent OC and PC components and/or the refractory soot. By comparing the mini-CAST soot optical properties with soot properties derived from in-situ extinction measurements in a premixed flame, mini-CAST soot with a higher AAE could be identified as less mature soot.

Department/s

  • Combustion Physics
  • Ergonomics and Aerosol Technology
  • MERGE: ModElling the Regional and Global Earth System
  • Nuclear physics

Publishing year

2018-04-16

Language

English

Pages

757-767

Publication/Series

Aerosol Science and Technology

Volume

52

Issue

7

Document type

Journal article

Publisher

Taylor & Francis

Topic

  • Atom and Molecular Physics and Optics
  • Energy Engineering

Status

Published

ISBN/ISSN/Other

  • ISSN: 0278-6826