DOI QR코드

DOI QR Code

Characteristics of Electrolytic Ion Water Generation due to the electrical-conductivity of a liquid medium

액상 매질의 전기전도도 변화에 의한 전해이온수 발생 특성

  • Shin, Dong-Hwa (School of Dept. of Electrical Automatic Engineering, Yeungnam University College) ;
  • Ju, Jae-Hyun (Dept. of Electricity Engineering, Koje College)
  • 신동화 (영남이공대학교 전기자동화과) ;
  • 주재현 (거제대학교 전기공학과)
  • Received : 2017.07.20
  • Accepted : 2017.08.16
  • Published : 2017.09.30

Abstract

The following thesis researched into the characteristics of electrolytic ion water with different levels of electrical conductivity by adding NaCl into tap water which is for experimental use in multi-layered electrolytic ion water generator. Electrolytic ion water is generated by underwater electrolysis and the electrolysis generator has a simple structure, is easy to control and is highly utilized in industries. Electrolytic ion water is useful in many areas since it has a superior sterilizing power, has no possibility of secondary pollution itself as water and removes active oxygen. In the experiment, we used tap water with NaCl excluded and water with three different levels of electrical conductivity by changing NaCl concentration levels into three levels. The features of current and voltage in electrolytic ion water represented a form of quadric instead of the linear characteristic following ohm's law. As well, as the electric conductivity of water and applied voltage increased, we were able to generate much stronger acid water and alkali water.

Keywords

References

  1. Y. J. Kwon, S. C. Lee, "Study about density (ph) change of on alkaline ion by PWM voltage control necessary for a living body." SC, Journal of the institude of electronics engineers of korea, vol.41, no.6 pp. 37-42, (2004).
  2. D. Nelson, "Newer technologies for endoscope disinfection electrolyzed acid water and disposable-component endoscope system" Gastrointest Endosc Clin N Am, vol.10, no.2 pp. 319-328, (2000).
  3. N. Noriaki, T. Noriko, F. Tatsuya, D. Toshiya, "The use of electrolyzed solutions for the cleaning and disinfecting of dialyzers." Artificial Organs. vol.24, no.12 pp. 921-928, (2000). https://doi.org/10.1046/j.1525-1594.2000.06611.x
  4. S. H. Park, I. S. Kim, "Disinfection of harmful organisms for sea water using electrolytic treatment system." Journal of navigation and port research vol.28 no.10, pp. 955-960, (2004). https://doi.org/10.5394/KINPR.2004.28.10.955
  5. O. Groterud, L. Smoczynski, "Phosphorus removal from water by means of electrolysis", Water Research, vol.20, no.5 pp. 667-669, (1986). https://doi.org/10.1016/0043-1354(86)90032-1
  6. M. S. E. Abdo, Al-Ameeri, S. Rasheed, "Anodic oxidation of a direct dye in an electrochemical reactor", Journal of environmental science and health Part A, Environmental science and engineering, vol.A22, no.1 pp. 27-45, (1987). https://doi.org/10.1080/10934528709375331
  7. H. Kokichi, S. Dongxu, L. Richard, K. Yoshinori, F. Gabriel, "The mechanism of the enhanced antioxidant effects against superoxide anion reduced water produced by electrolysis." BiopHysical Chemistry, vol.107, no.1 pp. 71-82, (2004). https://doi.org/10.1016/j.bpc.2003.08.007