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천연가스의 수증기 개질에서 수성가스 전환용 충진층 반응기의 전산모사

Packed Bed Reactor Simulation for the Water Gas Shift Reaction in the Steam Reforming of Natural Gas

  • 이득기 (광주대학교 소방행정학과)
  • LEE, DEUKKI (Dept. of Fire Safety, Gwangju University)
  • 투고 : 2016.08.25
  • 심사 : 2016.10.30
  • 발행 : 2016.10.30

초록

A 1-dimensional heterogeneous reactor model with the gas-solid interfacial phase gradients was developed for the simulation of the packed bed reactor where the exothermic reversible water gas shift reaction for the natural gas steam reformed gas was proceeding in adiabatic mode. Experimental results obtained over the WGS catalyst, C18-HA, were best simulated when the frequency factor of the reaction rate constant was adjusted to a half the value reported over another WGS catalyst, EX-2248, having the same kinds of active components as the C18-HA. For the reactor of the inside diameter 158.4 mm and the bed length 650 mm, the optimum feeding temperature of the reformed gas was simulated to be $194^{\circ}C$, giving the lowest CO content in the product gas by 1.68 mol% on the basis of dried gas. For reactors more extended in the bed length, the possible lowest CO content in the product gas with the optimum feeding temperature of the reformed gas were suggested.

키워드

참고문헌

  1. J. Ogden, "Prospects for Building a Hydrogen Energy Infrastructure", chapter in Annual Review of Energy and the Environment, Vol. 24, 1999, p. 227. https://doi.org/10.1146/annurev.energy.24.1.227
  2. C. E. Thomas, I. F. Kuhn, B. D. James, F. D. Lomax, and G. N. Baum, "Affordable hydrogen supply pathways for fuel cell vehicles", International Journal of Hydrogen Energy, Vol. 23, No. 6, 1998, p. 507. https://doi.org/10.1016/S0360-3199(97)00102-X
  3. J. J. Winebrake and B. P. Creswick, "The Future of Hydrogen Fueling Systems for Transportation: An Application of Perspective-based Scenario Analysis Using the Hierarchy Process", Technological Forecasting & Social Change, Vol. 70, No. 4, 2003, p. 359. https://doi.org/10.1016/S0040-1625(01)00189-5
  4. J. M. Zalc, and D. G. Loffler, "Fuel processing for PEM fuel cells: transport and kinetic issues of system design", Journal of Power Sources, Vol. 111, 2002, p. 58. https://doi.org/10.1016/S0378-7753(02)00269-0
  5. 윤왕래, 서동주, 주국택, 박상호, 박종호, 김종남, 서용석, 황영재, 정운호, "수소충전소용 천연가스 수증기개질 수소 제조공급 시스템 개발", 한국에너지기술연구원 과제보고서, KIER-A86404, 2009.
  6. Y. Choi and H. G. Stenger, "Water gas shift reaction kinetics and reactor modeling for fuel cell grade hydrogen", Journal of Power Sources, Vol. 124, 2003, p. 432. https://doi.org/10.1016/S0378-7753(03)00614-1
  7. C. N. Satterfield, "Heterogeneous Catalysis in Practice", McGraw-Hill, N.Y., 1980.
  8. M. H. Wesenberg, "Gas Heated Steam Reformer Modeling", Ph. D. Thesis, Norwegian University of Science and Technology, 2006.
  9. C. G. Hill, Jr., "A Introduction To Chemical Engineering Kinetics & Reactor Design", John Wiley & Sons, N.Y., 1977.