Development of a New Ceramic Substrate with Gas Flow Control Functionality

被引:5
|
作者
Yoshida T. [1 ]
Suzuki H. [1 ]
Aoki Y. [2 ]
Hayashi N. [3 ]
Ito K. [3 ]
机构
[1] Toyota Motor Corporation, Japan
[2] Toyota Motor North America Inc., Japan
[3] DENSO Corporation, Japan
关键词
Compendex;
D O I
10.4271/2017-01-0919
中图分类号
学科分类号
摘要
Emission regulations in many countries and regions around the world are becoming stricter in reaction to the increasing awareness of environment protections, and it has now become necessary to improve the performance of catalytic converters to achieve these goals. A catalytic converter is composed of a catalytically active material coated onto a ceramic honeycomb-structured substrate. Honeycomb substrates play the role of ensuring intimate contact between the exhaust gas and the catalyst within the substrate’s flow channels. In recent years, high-load test cycles have been introduced which require increased robustness to maintain low emissions during the wide range of load changes. Therefore, it is extremely important to increase the probability of contact between the exhaust gas and catalyst. To achieve this contact, several measures were considered such as increasing active sites or geometrical surface areas by utilizing substrates with higher cell densities or larger volumes. These measures, however, led to greater consumption of precious metals and decreased vehicle power by increasing pressure losses. Therefore, a new concept substrate, which focuses on gas flow redistribution, has been developed to overcome these negatives. The key points of this development include a compound cell structure design which consists of a higher cell density area in the center portion of the substrate completely surrounded by a lower cell density area and optimization of the cell design for each portion to improve the efficiency of the catalytic converter. As a result, this newly developed honeycomb substrate shifts the trend line relationship of catalytic performance and pressure loss to a higher level. In addition, it reduces precious metal usage, as well as the volume of catalytic converters while maintaining catalytic performance equivalent to that of a conventional honeycomb substrate (400 cell density). Copyright © 2017 SAE International.
引用
收藏
页码:1588 / 1594
页数:6
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  • [1] Gas control safeguards development of a landfill site
    Nosanov, M.E.
    White, R.L.
    Public Works, 1976, 107 (10): : 76 - 77
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    Chen, Yingli
    Li, Tao
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  • [3] Development of silicon nitride components for Ceramic Gas Turbine engine (CGT302)
    R and D Center Kagoshima, Kyocera Corporation, Kokubu, Japan
    不详
    Ind Ceram, 1600, 3 (188-192):
  • [4] A control oriented model development for a gas control path with a stepper motor-based actuator for a gas engine
    Das, Himadri B.
    Kavitha, K.N.
    Padhi, L.N.
    Srikanth, K.M.
    Dhinagar, S. Jabez
    SAE Technical Papers, 2011,
  • [5] Mini-NC-an innovative control concept for series production development of a cost-efficient numerical control with minimised functionality
    Brecher, Christian
    Servos, Michael
    Lohse, Wolfram
    ZWF Zeitschrift fuer Wirtschaftlichen Fabrikbetrieb, 2012, 107 (7-8): : 547 - 552
  • [6] DEVELOPMENT OF A NEW METHANE GAS FERMENTATION SYSTEM.
    Maekawa, Takaaki
    Yamazawa, Shingo
    Energy developments in Japan, 1983, 5 (04): : 325 - 349
  • [7] Crystallization-Induced Liquid Gate for Tunable Gas Flow Control
    Han, Yuhang
    Huang, Xinlu
    Chi, Kunxiang
    Liu, Jing
    Zhang, Yunmao
    Zhang, Jian
    Hou, Xu
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2024, 15 (35): : 8997 - 9002
  • [8] PLUG FLOW OF BULK SOLIDS USING GAS PRESSURE CONTROL.
    Emery, R.B.
    Technical Paper - Society of Manufacturing Engineers. MS, 1975,
  • [9] NEW RELAY CURRENT FLOW TEST FACILITIES DEVELOPMENT
    HOTCHKISS, AJ
    MOLLER, JR
    WESTERN ELECTRIC ENGINEER, 1976, 20 (02): : 16 - 19
  • [10] Generation and control of electrolyte cathode atmospheric glow discharges using miniature gas flow
    Tokyo Institute of Technology, O-okayama 2-12-1, S3-9, Meguro-ku, Tokyo 152-8552, Japan
    IEEJ Trans. Fundam. Mater., 4 (269-274+16):