DOI QR코드

DOI QR Code

A Study on Numerical Simulation of Gaseous Flow in SCR Catalytic Filter of Diesel Exhaust Gas Aftertreatment Device

  • Bae, Myung-Whan (Research Center for Aircraft Parts Technology, School of Mechanical and Aerospace Engineering, Gyeongsang National University) ;
  • Syaiful, Syaiful (Graduate School, Gyeongsang National University) ;
  • Mochimaru, Yoshihiro (Department of International Development Engineering, Graduate School of Science and Engineering, Tokyo Institute of Technology)
  • Received : 2009.08.11
  • Accepted : 2009.12.28
  • Published : 2010.05.31

Abstract

A SCR catalytic filter system is used for reducing $NO_x$ and soot emissions simultaneously from diesel combustors. The amount of ammonia (as a reducing agent) must be controlled with the amount of $NO_x$ to obtain an optimal $NO_x$ conversion. Hence, gas mixing between ammonia and exhaust gases is vital to ensure that the SCR catalyst is optimally used. If ammonia mass distribution is not uniform, slip potential will occur in rich concentration areas. At lean areas, on the other hand, the catalyst is not fully active. The better mixing is indicated by the higher uniformity of ammonia mass distribution which is necessary to be considered in SCR catalytic filter system. The ammonia mass distributions are depended on the flow field of fluids. In this study, the velocity field of gaseous flow is investigated to characterize the transport of ammonia in SCR catalytic filter system. The influence of different injection placements on the ammonia mass distribution is also discussed. The results show that the ammonia mass distribution is more uniform for the injector directed radially perpendicular to the main flow of inlet at the gravitational direction than that at the side wall for both laminar (Re = 640) and turbulent flows (Re = 4255). It is also found that the mixing index decreases as increasing the heating temperature in the case of ammonia injected at the side wall.

Keywords

References

  1. Karlsson M., Wallin U., Fredholm S.,Jansson J. and Wahlstroom G. O., A Combined 3D/Lumped Modeling Approach to Ammonia SCR Aftertreatment Systems:Application to Mixer Designs, SAE Technical Paper 2006-01-0469, 2006.
  2. Zhang X., Romzek M. and Morgan C.,3-D Numerical Study of Mixing Characteristics of $NH_3$ in Front of SCR, SAE Technical Paper 2006-01- 3444, 2006.
  3. Bae M. W., Syaiful and Hwang K. Y., "Numerical modeling of ammonia distribution characteristics in the mixing area of SCR catalytic filter device," Proceedings of International Conference on Modeling and Diagnostics for Advanced Engine Systems (COMODIA), EM1-2, pp. 709-716, 2008.
  4. Syaiful, Bae M. W. and Im K., "Effect of injection placement and direction on ammonia distribution around SCR catalytic filter device by numerical Modeling", KSAE 2008 Annual Conference Proceedings, KSAE-A0011, pp. 142-150, 2008.
  5. Adapco, STAR-CD v.4.06, 2008.
  6. Kim Y. A., The Effect of $MnO_2$ Addition on the $V_2O_5/TiO_2$ Catalytic Filter for NO Reduction, Master Thesis, Gyeongsang National University, 2007.
  7. Han, Y. W., Bae M. W., Choi J. H. and Kim J. H, "Development of a combined Urea-SCR catalytic filter system for simultaneous of soot and $NO_x$ emissions in diesel engines," KSAE 2008 Annual Conference Proceedings, KSAE08-A0086, pp. 216-222, 2008.
  8. Reid R. C., Prausnitz J. M. and Poling B. E., The Properties of Gases and Liquids, 4th Edition, McGraw-Hill, 1987.
  9. Nield D. A. and Bejan A., Convection in Porous Media, 3rd edition, Springer, 2006.

Cited by

  1. Wall flow characteristics with static mixer position and housing geometry for preventing urea-salt deposition vol.37, pp.4, 2013, https://doi.org/10.5916/jkosme.2013.37.4.368