질소산화물 제거를 위한 디스크형 바나디아 촉매담지 세라믹필터의 특성

Characteristics of Disc-Type V2O5 Catalyst Impregnated Ceramic Filters for NOx Removal

  • 홍민선 (아주대학교 환경ㆍ도시공학부) ;
  • 문수호 (아주대학교 환경ㆍ도시공학) ;
  • 이재춘 (명지대학교 무기재료공학) ;
  • 이동섭 (경운대학교 보건환경학부)
  • 발행 : 2004.08.01

초록

The performance of disk-type catalytic filters impregnated by TiO$_2$ or TiO$_2$-3Al$_2$O$_3$ㆍ 2SiO$_2$ supports and V$_2$O$_{5}$ catalyst was evaluated for selective catalytic reduction (SCR) of NO with ammonia as a reductant. XRD, FT -IR, BET and SEM were used to characterize the catalytic filters prepared in this work. Optimal V$_2$O$_{5}$ loading and reaction temperature for V$_2$O$_{5}$/TiO$_2$ catalytic filters were 3-6 wt.% and 350-40$0^{\circ}C$ at GHSV 14,300 $hr^{-1}$ in the presence of oxygen, respectively. With increasing the V$_2$O$_{5}$ loading from 0.5 to 6 wt%, NO conversion increased from 24 to 96% at 40$0^{\circ}C$ and 14.300$hr^{-1}$, and maintained at 80% over in the V$_2$O$_{5}$ loading range of 3-6 wt.% and then dropped at V$_2$O$_{5}$ loading of 7wt.% over. In comparing V$_2$O$_{5}$/ TiO$_2$ and V$_2$O$_{5}$/ TiO$_2$-3Al$_2$O$_3$ㆍ2SiO$_2$ catalytic fillers, which have same 3wt.% V$_2$O$_{5}$ loading, the V$_2$O$_{5}$/ TiO$_2$-3A1$_2$O$_3$ㆍ2SiO$_2$ catalytic filter showed higher activity than V$_2$O$_{5}$/ TiO$_2$ catalytic filter, but higher differential pressure drops owing to its low air permeability. low air permeability.

키워드

참고문헌

  1. 한국대기환경학회지 v.19 no.3 세라믹 섬유 필터를 이용한 디젤 입자상물질 배출저감에 관한 기초연구 주용남;홍민선;문수호;이동섭;임우택
  2. 한국대기환경학회지 v.20 no.2 디스크형 산화구리 촉매담지 세라믹필터의 제조와 물성 홍민선;문수호;이재춘;이동섭;임우택
  3. 한국대기환경학회지 v.20 no.3 산화구리 촉매담지 세라믹 캔들필터를 이용한 NO 제거 홍민선;문수호;이재춘;이동섭
  4. J. Catalysis v.161 Reactivity of V$_2$O$_5$ catalytic reduction of NO by NH$_3$ : Influence of vanadia loading, H$_2$O and SO$_2$ Amiridis, M.D.;I.E. Wachs;G. Deo;J.M. Jehng;D. S. Kim https://doi.org/10.1006/jcat.1996.0182
  5. Journal of Am. Ceram. Soc. v.73 The determination of pore volume and area distribution in porous substance I. computations from nitrogen isotherms Barrett, E.P.;L.G. Joyner;P.P. Halenda https://doi.org/10.1021/ja01145a126
  6. Catalysis Today v.53 Evaluation of V$_2$O$_5$-WO$_3$-TiO$_2$ and alternative SCR catalysts in the abatement of VOCs Busca, G.M. Baldi;C.Pistarino;J.M.;Gallardo Amores;V. Sanchez Escribano;E.;Finocchio;G. Romezzano;F. Bregani;G.P. Toledo https://doi.org/10.1016/S0920-5861(99)00140-6
  7. Catalysis Today v.42 Two-bed catalytic system for NOx/SOx removal Blanco, J.;A. Bahamonde;E. Alvarez;P. Avila https://doi.org/10.1016/S0920-5861(98)00079-0
  8. Applied Catalysis B: Environmental v.28 Selective catalytic reduction of nitrogen oxides by combining a non-thermal plasma and a V$_2$O$_5$-WO$_3$-TiO$_2$ catalyst Broer, S.;T. Hammer https://doi.org/10.1016/S0926-3373(00)00166-1
  9. Colloids and Surfaces A : Physicochemical and Engineering Aspects v.98 Preparation and characterization of various titania (anatase) used as support for vanadia-supported catalysts Georgiadou, I.;N. Spanos;C. Papadopoulou;H. Matralis;C. Kordulis;A. Lycourghiotis https://doi.org/10.1016/0927-7757(95)03121-S
  10. J. of the ceramic society of Japan v.106 no.1 Oxidation-Resistant coating of carbon fibers with TiO$_2$ by sol-gel method Hashishin, T.;J. Murashita;A. Joyama;Y. Kaneko https://doi.org/10.2109/jcersj.106.1
  11. J. of Mat. Sci. v.29 Crystal structures of TiO$_2$ thin coatings prepared from the alkoxide solution via the dip-coating technique affecting the photocatalytic decomposition of aqueous acetic acid Kato, K.;A. Tsuzuki;H. Taoda;Y. Torii https://doi.org/10.1007/BF00366875
  12. Environmental Progress v.11 no.1 SNRB catalytic baghouse laboratory pilot testing Kudlac, G.A.;G.A. Farthing, T. Szymanski;R. Corbett https://doi.org/10.1002/ep.670110115
  13. Journal of Colloid and Interface Science v.26 Investigation of a complete pore structure analysis I. anlaysis of micropores Mikhail, R.S.;S. Brunauer;E.E. Bodor https://doi.org/10.1016/0021-9797(68)90270-1
  14. Environmental Progress v.14 no.1 SCR catalyst-coated fabric filters for simultaneous NOx and high-temperature paricu-late control Ness, S.R.;G.E. Dunham;G.E. Weber;D.K. Lundlow https://doi.org/10.1002/ep.670140125
  15. Applied Catalysis B: environmental v.23 Comparison of TiO$_2$-based catalysts for the selective catalytic reduction of NO : effect of aging the vanadium precursor solution Nicolaos, V.E.;D.A. Pena;P.G. Smirniotis https://doi.org/10.1016/S0926-3373(99)00070-3
  16. Catalysis Today v.53 Catalytic abatement of nitrogen oxides-stationary applications Ronald, M.H. https://doi.org/10.1016/S0920-5861(99)00139-X
  17. High Temperature Gas Cleaning Coupling catalysts and high-temperature resistance filters Saracco, G.;Achim, D.(et al.)
  18. Chemical Engineering Science v.51 no.24 Catalytically modified fly-ash filters for Nox reduction with NH$_3$ Saracco, G.;S. Specchia;V. Specchia https://doi.org/10.1016/S0009-2509(96)00373-9
  19. Chemical Engineering Science v.47 no.9-11 Multifunctional reactors Westerterp, K.R. https://doi.org/10.1016/0009-2509(92)87035-O
  20. Applied Catalysis B: Environmental v.23 A novel carbon-supported vanadium oxide catalysts for NO reduction with NH$_3$ at low temperature Zhu, Z.;Z. Liu;S. Liu;H. Niu https://doi.org/10.1016/S0926-3373(99)00085-5