DOI QR코드

DOI QR Code

Control Oriented Storage and Reduction Modeling of the Lean NOx Trap Catalyst

제어를 위한 Lean NOx Trap의 흡장 및 환원 모델링

  • Lee, Byoungsoo (Department of Mechanical and Automotive Engineering, Keimyung University) ;
  • Han, Manbae (Department of Mechanical and Automotive Engineering, Keimyung University)
  • 이병수 (계명대학교 기계자동차공학과) ;
  • 한만배 (계명대학교 기계자동차공학과)
  • Received : 2013.07.01
  • Accepted : 2013.09.16
  • Published : 2014.03.01

Abstract

A control oriented model of the Lean $NO_x$ trap (LNT) was developed to determine the timing of $NO_x$ regeneration. The LNT model consists of $NO_x$ storage and reduction model. Once $NO_x$ is stored ($NO_x$ storage model), at the right timing $NO_x$ should be released and then reduced ($NO_x$ reduction model) with reductants on the catalyst active sites, called regeneration. The $NO_x$ storage model simulates the degree of stored $NO_x$ in the LNT. It is structured by an instantaneous $NO_x$ storage efficiency and the $NO_x$ storage capacity model. The $NO_x$ storge capacity model was modeled to have a Gaussian distribution with a function of exhaust gas temperature. $NO_x$ release and reduction reactions for the $NO_x$ reduction model were modeled as Arrhenius equations. The parameter identification was optimally performed by the data of the bench flow reactor test results at space velocity 50,000/hr, 80,000/hr, and temperature of $250-500^{\circ}C$. The LNT model state, storage fraction indicates the degree of stored $NO_x$ in the LNT and thus, the timing of the regeneration can be determined based on it. For practical purpose, this model will be verified more completely by engine test data which simulate the NEDC transient mode.

Keywords

References

  1. J. B. Heywood, Internal Combustion Engine Fundamentals, McGraw Hill, New York, 1988.
  2. T. V. Johnson, "Diesel Emissions Control in Review," J. Fuels and Lubricants, Vol.1, No.1, pp.68-81, 2009.
  3. B. West, S. Huff, J. Parks, S. Lewis, J. S. Choi, W. Partride and J. Storey, "Assessing Reductant Chemistry during In-cylinder Regeneration of Diesel Lean $NO_x$ Trap," SAE 2004-01-3023, 2004.
  4. K. Nguyen, H. Kim, B. G. Bunting, T. J. Toops and C. S. Yoon, "Rapid Aging of Diesel Lean NOx Traps by Hight-temperature Thermal Cycling," SAE 2007-01-0470, 2007.
  5. J. Parks, B. West, M. Swartz and S. Huff, "Characterization of Lean $NO_x$ Trap Catalysts with In-cylinder Regeneration Strategies," SAE 2008-01-0448, 2008.
  6. W. S. Epling, L. E. Campbell, A. Yezerets, N. W. Currier and J. E. Parks, "Overview of the Fundamentals Reactions and Degradation Mechanism of NOx Storage/Reduction Catalysts," Catalysis Reviews, Vol.46, No.2, pp.163-245, 2004. https://doi.org/10.1081/CR-200031932
  7. Y. Wang, S. Raman and J. W. Grizzle, "Dynamic Modeling of a Lean NOx Trap for Lean-burn Engine Control," Proceedings of the American Control Conference, Vol.2, pp.1208-1212, 1999.
  8. M. Larsson, L. Andersson, O. Fast, M. Litorell and R. Makuie, "$NO_x$ Trap Control by Physically Based Model," SAE 1999-01-3503, 1999.
  9. Y. Kim, J. Sun, I. Kolmanovsky and J. Koncsol, "A Phenomenological Control Oriented Lean $NO_x$ Trap Model," SAE 2003-01-1164, 2003.
  10. S. Midlam-Mohler, Modeling, Control and Diagnosis of a Diesel Lean $NO_x$ Trap Catalyst, Ph. D. Dissertation, Ohio State University, Ohio, 2005.
  11. K. M. Nauta, Model Reduction of a Lean $NO_x$ Trap Catalyst Model, Ph. D. Dissertation, Eindhoven University of Technology, Luxemburg, 2008.
  12. H. Kim, M. Han, T. Kim and J. Jeon, "A Performance Modeling of the Lean $NO_x$ Trap Catalyst with GT-POWERTM," Transactions of KSAE, Vol.21, No.6, pp.64-71, 2013. https://doi.org/10.7467/KSAE.2013.21.6.064