Control oriented model of a lean NOx trap for the catalyst regeneration in a 2.2 L direct injection diesel engine
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  • 作者:M. Han (1)
    B. Lee (1)

    1. Department of Mechanical and Automotive Engineering
    ; Keimyung University ; Daegu ; 704-701 ; Korea
  • 关键词:Lean NOx trap catalyst (LNT) ; NOx storage fraction ; NOx storage model ; NOx reduction model ; New european driving cycle (NEDC)
  • 刊名:International Journal of Automotive Technology
  • 出版年:2015
  • 出版时间:June 2015
  • 年:2015
  • 卷:16
  • 期:3
  • 页码:371-378
  • 全文大小:748 KB
  • 参考文献:1. Akihama, K., Takatori, Y., Inagaki, K., Sasaki, S., Dean, A. (2001) Mechanism of the smokeless rich diesel combustion by reducing temperature. SAE Paper No..
    2. Canova, M., Midlam-Mohler, S., Pisu, P., Soliman, A. (2010) Model-based fault detection and isolation for a diesel lean NOx trap. Control Engineering Practice 18: pp. 1307-1317 CrossRef
    3. Cho, K., Han, M., Wagner, R. M., Sluder, C. S. (2008) Mixed-source EGR for enabling high efficiency clean combustion modes in a light-duty diesel engine. SAE Int. J. Engines 1: pp. 457-465
    4. Epling, W. S., Campbell, L. E., Yezerets, A., Currier, N. W., Parks, J. E. (2004) Overview of the fundamentals reactions and degradation mechanism of NOx storage/ reduction catalysts. Catalysis Reviews 46: pp. 163-245 CrossRef
    5. Hasegawa, R., Yanagihara, H. (2003) HCCI combustion in DI diesel engine. SAE Paper No..
    6. Heywood, J. B. (1988) Internal Combustion Engine Fundamentals.
    7. Jacobs, T. J., Assanis, D. N. (2007) The attainment of premixed compression ignition low-temperature combustion in a compression ignition direct injection engine. Proc. Comb. Inst. 31: pp. 2913-2920 CrossRef
    8. Johnson, T. (2013) Vehicular emissions in review. SAE Int. J. Engines 6: pp. 699-715
    9. Kim, Y., Sun, J., Kolmanovsky, I., Koncsol, J. (2003) A phenomenological control oriented lean NOx trap model. SAE Paper No..
    10. Larsson, M., Andersson, L., Fast, O., Litorell, M., Makuie, R. (1999) NOx trap control by physically based model. SAE Paper No..
    11. Lee, B., Grepl, R., Han, M. (2013) A new approximation of the storage efficiency for the lean NOx trap model. Mechatronics 2013: Recent Technological and Scientific Advances.
    12. Lee, B., Han, M. (2014) Control oriented storage and reduction modeling of the lean NOx trap catalyst. Trans. KSAE 22: pp. 60-66
    13. Midlam-Mohler, S. (2005) Modeling, Control and Diagnosis of a Diesel Lean NOx Trap Catalyst. Tech.
    14. Nauta, K. M. (2010) Model Reduction of a Lean NOx Trap Catalyst Model.
    15. Shimazaki, N., Tsurushima, T., Nishimura, T. (2003) Dual mode combustion concept with premixed diesel combustion by direct injection near top dead denter. SAE Paper No..
    16. Sun, J., Kim, Y. W., Wang, L. (2004) Aftertreatment control and adaptation for automotive lean burn engines with HEGO sensors. Int. J. Adapt. Control Signal Process 18: pp. 144-166
    17. Wang, Y., Raman, S., Grizzle, J. W. (1999) Dynamic modeling of a lean NOx trap for lean-burn engine control. Proc. American Control Conf 2: pp. 1208-1212
  • 刊物类别:Engineering
  • 刊物主题:Automotive and Aerospace Engineering and Traffic
  • 出版者:The Korean Society of Automotive Engineers
  • ISSN:1976-3832
文摘
In this study a control oriented lean NOx trap (LNT) model was successfully developed for the LNT regeneration purpose to estimate the NOx storage fraction, NOx concentration out of an LNT catalyst and an LNT catalyst bed temperature. The LNT model consists of storage, reduction and 0-D catalyst bed temperature submodel. The model parameters were estimated by the least square fit method in the environment of MATLAB and Simulink. This model was validated through transient engine data to simulate the NEDC mode. The NOx storage fraction in the LNT catalyst can be used as a mean of the determination of the LNT regeneration timing and duration control. The catalyst bed temperature model monitors the thermal behavior. The LNT model was validated by the NEDC mode data shows less than 7% error of cumulated NOx out amount during the storage phase. In addition the catalyst bed temperature model exhibits quite similarly to the experimental data. Therefore the LNT model developed in this study can be applied to the vehicle application as an LNT regeneration control.

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