• DocumentCode
    1078393
  • Title

    Regeneration of Honeycomb Zeolite by Nonthermal Plasma Desorption of Toluene

  • Author

    Kuroki, Tomoyuki ; Fujioka, Takeshi ; Kawabata, Ryouhei ; Okubo, Masaaki ; Yamamoto, Toshiaki

  • Author_Institution
    Dept. of Mech. Eng., Osaka Prefecture Univ., Sakai
  • Volume
    45
  • Issue
    1
  • fYear
    2009
  • Firstpage
    10
  • Lastpage
    15
  • Abstract
    In order to develop an economical volatile organic compound (VOC) removal process, a concentration technique using nonthermal plasma combined with an adsorption process is investigated. Toluene-one of the most commonly used VOCs-is used, and the optimization of plasma desorption is investigated. The effects of toluene concentration and adsorbent regeneration are investigated by varying the plasma desorption methods: closing method, in which a carrier gas is stopped flowing during a portion of plasma desorption time, and nonclosing method. As a result, the closing method is favored with regard to parameters such as concentration, desorption efficiency, regeneration efficiency, and by-product formation. Then, the plasma desorption using closing method is investigated as a function of discharge power, closing time, a carrier gas flow rate for plasma desorption, and plasma desorption time. When a 2-L/min and 30-ppm toluene gas is employed as a target gas, a toluene concentration exceeding 30 times the original concentration is achieved with a reduction in the gas volume by 1/60. The repeatability of adsorption and plasma desorption is successfully demonstrated; these processes yield an extremely effective and practical VOC removal process.
  • Keywords
    adsorption; desorption; organic compounds; plasma chemistry; plasma materials processing; zeolites; adsorbent regeneration; adsorption process; by-product formation; desorption efficiency; honeycomb zeolite regeneration; nonthermal plasma desorption method; regeneration efficiency; toluene concentration; volatile organic compound; Atmospheric-pressure plasmas; Flue gases; Incineration; Mechanical engineering; Plasma applications; Plasma materials processing; Plasma sources; Plasma temperature; Power generation economics; Volatile organic compounds; Adsorption; concentration; nonthermal plasma; plasma desorption; volatile organic compounds (VOCs);
  • fLanguage
    English
  • Journal_Title
    Industry Applications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-9994
  • Type

    jour

  • DOI
    10.1109/TIA.2008.2009476
  • Filename
    4757415