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Manufacture of the Hydrophobic HY-type Zeolite-honeycomb and Its Adsorption/Desorption Characteristics for the Benzene, o-xylene, and MEK

소수성 HY-형 제올라이트제 하니컴의 제조 및 그 하니컴의 벤젠, o-xylene, MEK에 대한 흡.탈착특성

  • Mo, Se-Young (Department of Environmental Eng'ng, National Chungbuk University) ;
  • Jeon, Dong-Hwan (Department of Environmental Eng'ng, National Chungbuk University) ;
  • Kwon, Ki-Seung (Department of Environmental Eng'ng, National Chungbuk University) ;
  • Sohn, Jong-Ryeul (Department of Environmental Health, Korea University)
  • 모세영 (충북대학교 공과대학 환경공학과) ;
  • 전동환 (충북대학교 공과대학 환경공학과) ;
  • 권기승 (충북대학교 공과대학 환경공학과) ;
  • 손종렬 (고려대학교 보건과학대학 환경보건학과)
  • Published : 2007.02.28

Abstract

We performed the experiments to manufacture the hydrophobic $200cells/in^2$-zeolite honeycomb using HY-type zeolite of Si/Al ratio of 80 for separating and removing the VOCs emitted from small and medium size-plants by adsorption and to determine the drying method for the honeycomb at $105^{\circ}C$ without cracking, then measured performances of the honeycomb to adsorb the benzene, o-xylene, and MEK and to desorb the benzene and MEK saturated on the honeycomb by the nitrogen gas as the desorption gas. As a results, the good honeycomb was formed and the honeycomb was not cracked when the mixing ratio of the zeolite to bentonite to methyl cellulose to polyvinyl alcohol to glycerine to water is 100 : 8.73 : 2.18 : 4.19 : 1.38 : 126 and dried the honeycomb at $105^{\circ}C$ for 24 hours in the drying oven. The shape of the dried honeycomb was not changed after calcination, and the compressive strengths of the honeycomb after drying and calcination were 6.7 and $0.69kg/cm^2$, respectively. The adsorption efficiencies of the honeycomb for benzene, o-xylene, and MEK were $92{\sim}96%$ at the room temperature. The desorption efficiency at $180^{\circ}C$ was higher than that at $150^{\circ}C\;by\;1.5{\sim}13.8%$ depending on the flow rate of the nitrogen gas, and it was found that desorption efficiency is higher than 85% at $180^{\circ}C$ and 1.0L/min of the nitrogen gas. At $180^{\circ}C$ and 0.2 L/min, the concentration of the benzene and MEK in the used desorption gas are higher than 40,000 and 50,000ppm, respectively, so it be used as the fuel for preheating the desorption gas fed into the column in desorption cycle.

Keywords

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