DOI QR코드

DOI QR Code

A Study of The Surface Dielectric Barrier Discharge Design Conditions for Generating Negative Air Ions

음이온 생성을 위한 표면 유전체장벽방전의 설계조건 연구

  • Received : 2013.11.20
  • Accepted : 2013.12.05
  • Published : 2014.01.31

Abstract

This paper describes a study of the design conditions of a planar surface dielectric barrier discharge (DBD) reactors for generating negative air ions. The capacity of negative air ion generated by the surface DBD reactor is affected by the shape, area ratio and the location of the discharge and induction electrodes of it. To study the optimal design conditions of DBD reactors, the electrodes printed on the substrate of a PCB board is utilized to conduct kind of experiments: the distance of the each electrode along with the X-Y axis, the area ratio of the discharge electrode to induction electrode, and the symmetrical and asymmetrical location of two electrodes. The ion generation capacity is inverse proportional to the gap increases along with X-Y axis. And the optimum ion concentration generated by the ionizer was inspected when the electrodes area ratio was 3 and 5 times of the symmetrical and asymmetrical experimental condition respectively.

Keywords

References

  1. Daniels, S.L, "On the ionization of air for removal of noxious effluvia" (Air ionization of indoor environments for control of volatile and particulate contaminants with nonthermal plasmas generated by dielectric-barrier discharge)", IEEE Trans on, Plasma Science, Vol. 30, pp. 1471-1481, 2002. https://doi.org/10.1109/TPS.2002.804211
  2. H Nakane, "Stress-Reducing effect of negative air ions on physiological",R&D Review of Toyota CRDL, Vol.38, No.2, 2003.
  3. Ikeuchi, Toru, et al. "Neutralization by a corona discharge ionizer in nitrogen atmosphere." Electrical Engineering in Japan 177.3 (2011): 1-8.
  4. Park, Jae-Hong, et al. "Removal of submicron aerosol particles and bioaerosols using carbon fiber ionizer assisted fibrous medium filter media." Journal of mechanical science and technology 23.7 (2009):1846-1851. https://doi.org/10.1007/s12206-009-0613-z
  5. Han, Bangwoo, et al. "Unipolar charging of fine and ultra-fine particles using carbon fiber ionizers." Aerosol Science and Technology 42.10 (2008): 793-800. https://doi.org/10.1080/02786820802339553
  6. Seto et al., "Ion generator and neutralizer", United State Patent, US 7,612,981 B2.
  7. Sekoguchi et al., "Ion generating element and ion generator, air conditioning apparatus, cleaner and refrigerator containing the same", United State Patent, US 7,254,006 B2.
  8. Dong-Hun Yeo, Hyo-Soon Shin, Youn-Woo Hong, "Thick film type cluster in Mg2SiO4/glass composite ceramics for anion generation", JKIEEME, vol. 23, No.2, P.118-123, Feb. 2010. https://doi.org/10.4313/JKEM.2010.23.2.118
  9. Rae Eun Park, Eun Ju HA, Jun-Hyoun Kwon, "Ceramic electrode structure for generation ions, and ion generating apparatus using the same", United State Patent, US 7,485,265 B2, Feb. 3, 2009.
  10. Ulrich Kogelschatz, "Dielectric-Barrier Discharges: Their History, Discharge Physics, and Industrial Applications", Plasma Chemistry and Plasma Processing, Vol. 23, Number 1, March 2003.
  11. Seung Yeob Lee, You Hwan Shin, "Experimental Study on Effect of Electrode Material and Thickness in a Dielectric Barrier Discharge Plasma Actuator Performance", Journal of fluid machinery, v.15 no.3, pp.46 - 50, 2012. https://doi.org/10.5293/kfma.2012.15.3.046
  12. AV Carazo, "50 Years of Piezoelectric Transformers: Trends in the Technology", MATERIALS RESEARCH SOCIETY SYMPOSIUM, 2004.
  13. Yang, Yujia, et al. "Comparison of Inductor-Half-Bridge and Class-E resonant topologies for piezoelectric transformer applications." Energy Conversion Congress and Exposition, 2009. ECCE 2009.
  14. MPT2805C00R2 Product specification, http://www.konghong.com/english/Content.asp?id=27&n_id=24&subs_type=6&subs_id=66&urls=zuzhi.asp