4.6 Article

Gas and heat dynamics of a micro-scaled atmospheric pressure plasma reference jet

期刊

出版社

IOP PUBLISHING LTD
DOI: 10.1088/0022-3727/48/44/444002

关键词

low temperature atmospheric pressure plasma jet; micro-scaled atmospheric pressure plasma jet; biomedical applications cold atmopsheric plasma; Reference jet MP1101 COST Action BioPlasma; plasma surface haeating biomedicine; gas and heat dynamics plasma; plasma jet schlieren imaging numerical modelling

资金

  1. European Cooperation in Science and Technolgy (COST) BIOPLASMA action [MP1101]
  2. Deutsche Forschungsgemeinschaft (DFG) [PlaCiD SCHU-2353/3-1]
  3. Science Foundation Ireland [08/SRC/1411]
  4. Ruhr University Research School PLUS
  5. Germany's Excellence Initiative [DFG GSC 98/3]

向作者/读者索取更多资源

Gas and heat dynamics of the 'Cooperation on Science and Technology (COST) Reference Microplasma Jet' (COST-jet), a European lead reference device for low temperature atmospheric pressure plasma application, are investigated. Of particular interest to many biomedical application scenarios, the temperature characteristics of a surface impacted by the jet are revealed. Schlieren imaging, thermocouple measurements, infrared thermal imaging and numerical modelling are employed. Temperature spatial profiles in the gas domain reveal heating primarily of the helium fraction of the gas mixture. Thermocouple and model temporal data show a bounded exponential temperature growth described by a single characteristic time parameter to reach similar to 63% or (1-1/e) fraction of the temperature increase. Peak temperatures occurred in the gas domain where the carrier jet exits the COST-jet, with values ranging from ambient temperatures to in excess of 100 degrees C in 'a-mode' operation. In a horizontal orientation of the COST-jet a curved trajectory of the helium effluent at low gas flows results from buoyant forces. Gas mixture profiles reveal significant containment of the helium concentrations for a surface placed in close proximity to the COST-jet. Surface heating of a quartz plate follows a similar bounded exponential temporal temperature growth as device heating. Spatial profiles of surface heating are found to correlate strongly to the impacting effluent where peak temperatures occur in regions of maximum surface helium concentration.

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