Potential and pitfalls in the use of dual exhaust gas oxygen sensors for three-way catalyst monitoring and control

被引:14
|
作者
Jones, JCP
Jackson, RA
机构
[1] Villanova Univ, Villanova, PA 19085 USA
[2] Univ Sussex, Brighton BN1 9RH, E Sussex, England
关键词
exhaust gas oxygen sensor; three-way catalyst; air-fuel ratio control; on-board diagnostics;
D O I
10.1243/095440703766518104
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Although it is known that exhaust gas oxygen (EGO) sensors are sensitive togas composition, even at a constant air-fuel ratio (AFR), its significance in dual EGO sensor based catalyst control and on-board diagnostic systems has not been fully recognized. The (time varying) difference in gas composition across the catalyst gives rise to a dynamically changing bias component at the sensor output, which is not readily distinguishable from the oxygen storage and release effects the sensor is intended to monitor. Unless treated explicitly, this is likely to degrade the performance of dual EGO sensor based systems. However, the distortion itself also reflects catalyst activity and is strongly correlated with a reversible catalyst deactivation effect which dominates hydrocarbon and NO conversion efficiency under rich conditions. A method for exploiting the biased signal to obtain both improved estimates of the true AFR and an insight into the reversible deactivation effect is therefore outlined.
引用
收藏
页码:475 / 488
页数:14
相关论文
共 50 条
  • [31] Effect of the Sequence of the Thermoelectric Generator and the Three-Way Catalytic Converter on Exhaust Gas Conversion Efficiency
    Chuqi Su
    Naiqiang Tong
    Yuman Xu
    Shan Chen
    Xun Liu
    Journal of Electronic Materials, 2013, 42 : 1877 - 1881
  • [32] Regulated and unregulated exhaust emissions from two three-way catalyst equipped gasoline fuelled vehicles
    Westerholm, R
    Christensen, A
    Rosen, A
    ATMOSPHERIC ENVIRONMENT, 1996, 30 (20) : 3529 - 3536
  • [33] Effect of the Sequence of the Thermoelectric Generator and the Three-Way Catalytic Converter on Exhaust Gas Conversion Efficiency
    Su, Chuqi
    Tong, Naiqiang
    Xu, Yuman
    Chen, Shan
    Liu, Xun
    JOURNAL OF ELECTRONIC MATERIALS, 2013, 42 (07) : 1877 - 1881
  • [34] Oxygen Storage Capacity of three-way catalysts: a global test for catalyst deactivation.
    Taha, R
    Duprez, D
    Mouaddib-Moral, N
    Gauthier, C
    CATALYSIS AND AUTOMOTIVE POLLUTION CONTROL IV, 1998, 116 : 549 - 558
  • [35] Study on three-way catalyst deterioration diagnosis based on oxygen storage rate model
    Wang, D.-L. (wdbright@163.com), 1600, Chinese Society for Internal Combustion Engines, 92 Weijin Road, Tianjin, Meng Qing, 300072, China (34):
  • [36] Pt substitution in Pd/Rh three-way catalyst for improved emission control
    Do Yeong Kim
    Wo Bin Bae
    Sang Woo Byun
    Young Jin Kim
    Dal Young Yoon
    Changho Jung
    Chang Hwan Kim
    Dohyung Kang
    Melanie J. Hazlett
    Sung Bong Kang
    Korean Journal of Chemical Engineering, 2023, 40 : 1606 - 1615
  • [37] Development of closed loop secondary air control three-way catalyst system
    Toyoda, T.
    Yamakawa, Y.
    Inoue, T.
    Oishi, K.
    Hattori, K.
    SAE Technical Papers, 1980,
  • [38] Pt substitution in Pd/Rh three-way catalyst for improved emission control
    Kim, Do Yeong
    Bae, Wo Bin
    Byun, Sang Woo
    Kim, Young Jin
    Yoon, Dal Young
    Jung, Changho
    Kim, Chang Hwan
    Kang, Dohyung
    Hazlett, Melanie J.
    Kang, Sung Bong
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2023, 40 (07) : 1606 - 1615
  • [39] A model-based approach to automotive three-way catalyst on-board monitoring
    Muske, Kenneth R.
    Jones, James C. Peyton
    Howse, James W.
    JOURNAL OF PROCESS CONTROL, 2008, 18 (02) : 163 - 172
  • [40] Mid-Ranging Control for an Automotive Three-Way Catalyst Outer Loop
    Santillo, Mario
    Magner, Steve
    Uhrich, Mike
    Jankovic, Mrdjan
    2016 AMERICAN CONTROL CONFERENCE (ACC), 2016, : 4193 - 4198