The role of flow field dynamics in enhancing volatile organic compound conversion in a surface dielectric barrier discharge system
Abstract: This study investigates the correlation between flow fields induced by a surface dielectric barrier discharge (SDBD) system and its application for the volatile organic compound (VOC) gas conversion process. As a benchmark molecule, the conversion of n-butane is monitored using flame ionization detectors, while the flow field is analysed using planar particle image velocimetry. Two individual setups are developed to facilitate both conversion measurement and investigation of induced fluid dynamics. Varying the gap distance between two SDBD electrode plates for three different n-butane mole fractions reveals local peaks in relative conversion around gap distances of 16 mm to 22 mm, indicating additional spatially dependent effects. The lowest n-butane mole fractions exhibit the highest relative conversion, while the highest n-butane mole fraction conversion yields the greatest number of converted molecules per unit time. Despite maintaining constant energy density, the relative conversion exhibits a gradual decrease with increasing distances. The results of the induced flow fields reveal distinct vortex structures at the top and bottom electrodes, which evolve in size and shape as the gap distances increase. These vortices exhibit gas velocity magnitudes approximately seven times higher than the applied external gas flow velocity. Vorticity and turbulent kinetic energy analyses provide insights into these structures' characteristics and their impact on gas mixing. A comparison of line profiles through the centre of the vortices shows peaks in the middle gap region for the same gap distances, correlating with the observed peaks in conversion. These findings demonstrate a correlation between induced flow dynamics and the gas conversion process, bridging plasma actuator studies with the domain of chemical plasma gas conversion.
- Kogelschatz U, Eliasson B and Egli W 1997 Le Journal de Physique IV 07 C4–47–C4–66 ISSN 1155-4339
- Kogelschatz U 2003 Plasma Chemistry and Plasma Processing 23 1–46 ISSN 02724324
- Cosselman K E, Navas-Acien A and Kaufman J D 2015 Nature Reviews. Cardiology 12 627–642 ISSN 1759-5010
- Directive 2008/50/EC of the European Parliament and of the Council of 21 May 2008 on ambient air quality and cleaner air for Europe
- Lewandowski DÂ A 2017 Design of Thermal Oxidation Systems for Volatile Organic Compounds. ISBN 978-1-351-45572-5 978-1-351-45570-1 978-1-351-45571-8
- Warahena A S K and Chuah Y K 2009 Environmental Science & Technology 43 6101–6105 ISSN 0013-936X, 1520-5851
- Jonathan P, Thomas M and Sergey L 2015 AerospaceLab Journal Issue 10 6 pages
- Robinson M 1962 American Journal of Physics 30 366–372 ISSN 0002-9505, 1943-2909
- Singh KÂ P and Roy S 2007 Journal of Applied Physics 101 123308 ISSN 0021-8979, 1089-7550
- Erfani R, Zare-Behtash H and Kontis K 2012 Experimental Thermal and Fluid Science 42 258–264 ISSN 08941777
- Hoskinson AÂ R and Hershkowitz N 2010 Journal of Physics D: Applied Physics 43 065205 ISSN 0022-3727, 1361-6463
- Friz P and Rovey J 2014 International Journal of Flow Control 6 75–86 ISSN 1756-8250
- SchĂĽcke L 2022 Analysis of Reaction Kinetics in a Surface Dielectric Barrier Discharge for the Conversion of Volatile Organic Compounds Ph.D. thesis
- Scharnowski S and Kähler C J 2020 Optics and Lasers in Engineering 135 106185 ISSN 01438166
- Kundu PÂ K, Cohen IÂ M and Dowling DÂ R 2012 Fluid Mechanics 5th ed (Amsterdam Heidelberg: Elsevier Academic Press) ISBN 978-0-12-382100-3 978-0-521-72169-1
- Esmaili H and Piomelli U 1992 Theoretical and Computational Fluid Dynamics 3 369–380 ISSN 0935-4964, 1432-2250
- Magnaudet J and Mougin G 2007 Journal of Fluid Mechanics 572 311–337 ISSN 0022-1120, 1469-7645
- Lorenzani S and Tilgner A 2001 Journal of Fluid Mechanics 447 111–128 ISSN 0022-1120, 1469-7645
- Al-Abdeli Y M and Masri A R 2003 Experimental Thermal and Fluid Science 27 655–665 ISSN 08941777
- Oertel jr H Prandtl - Führer durch die Strömungslehre: Grundlagen und Phänomene 13th ed ISBN 978-3-8348-2315-1
- Stull RÂ B (ed) 1988 An Introduction to Boundary Layer Meteorology (Dordrecht: Springer Netherlands) ISBN 978-90-277-2769-5 978-94-009-3027-8
- Sato M 2022 Physics of Fluids 34 083611 ISSN 1070-6631, 1089-7666
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