Behaviour of Acidic Gases(SOx, NOx) Adsorption on Aminated PP-g-AAc Ultrafine Fibrous Ion Exchanger

아민화 PP-g-AAc 초극세 이온교환섬유의 산성가스(SOx, NOx) 흡착거동

  • Choi, Yong-Jae (Department of Chemical Engineering, Chungnam National University) ;
  • Choi, Kuk-Jong (Department of Chemical Engineering, Chungnam National University) ;
  • Lee, Chang-Soo (Department of Chemical Engineering, Chungnam National University) ;
  • Hwang, Taek-Sung (Department of Chemical Engineering, Chungnam National University)
  • 최용재 (충남대학교 바이오응용화학부) ;
  • 최국종 (충남대학교 바이오응용화학부) ;
  • 이창수 (충남대학교 바이오응용화학부) ;
  • 황택성 (충남대학교 바이오응용화학부)
  • Published : 2009.01.25

Abstract

In this study, the behaviour of $SO_2$ and $NO_2$ adsorption on aminated ultrafine fibrous PP-g-AAc ion exchanger was investigated, The amount of adsorbed $SO_2$ increased with increasing the initial concentration of $SO_2$. The adsorption breakthrough time in the low concentration of $SO_2$ was faster than high concentration. The adsorption breakthrough occurred within 60 min. Approximately 80% of $SO_2$ was adsorbed below 100 ppm $SO_2$ and 90% of $SO_2$ over 100 ppm $SO_2$ respectively. The selective adsorption rate for $NO_2$ was lower than that of $SO_2$. The adsorption rate for $SO_2$ was decreased with increasing flow rate and that of $NO_2$ was 60%. The breakthrough occurred within 60 min. The adsorption rate for $SO_2$ was 92% in the 250 mL/g water content. Isotherm adsorption model for $SO_2$ was close to the Langmuir rather than Freundlich model.

본 연구는 아민화 polypropylene grafted acrylic acid(이하 PF-g-AAc로 표기) 초극세 이온교환섬유의 $SO_2$, $NO_2$에 대한 흡착거동을 고찰하였다. $SO_2$에 대한 흡착량은 초기농도가 높을수록 증가하였으며 농도가 낮을수록 흡착파과 시간이 짧아졌다. 흡착파과 평형은 60분 이내에 일어났으며 초기농도 100 ppm 이하에서는 약 80%정도 흡착이 이루어졌고, $SO_2$ 농도 100 ppm 이상에서 90% 이상 흡착되었다. $NO_2$의 흡착량은 $SO_2$에 비해 낮은 선택흡착성을 나타내었다. 한편, 유속이 증가함에 따라 $SO_2$의 흡착률은 낮아졌으며 60분 이내에 흡착파과 평형에 도달하였고, $NO_2$의 흡착량은 60%로 $SO_2$에 비해 낮았다. 함수율 250 mL/g에서 $SO_2$의 흡착량은 92%이었다. 아민화 PP-g-AAc 초극세 이온교환섬유의 $SO_2$등온흡착모델은 Freundlich 모델보다 Langmuir 모델에 근접하였다.

Keywords

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