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Homogeneous charge compression ignition combustion stability improvement using a rapid ignition system

International Journal of Engine Research, vol. 21, pp. 1846–1856

Abstract

When compared to traditional engines, homogeneous charge compression ignition has the potential to significantly reduce NO x raw emissions, while maintaining a high fuel efficiency. Homogeneous charge compression ignition is characterized by compression-induced autoignition of a lean homogeneous air–fuel mixture. Since homogeneous charge compression ignition does not utilize direct ignition control, it is strongly dependent on the state of the cylinder charge and can suffer from high cyclic variability. With spark-assisted compression ignition, it has been demonstrated that misfires can be reduced, while preserving the high thermal efficiency of homogeneous charge compression ignition as a result of the more favorable physical mixture properties due to dilution. However, spark-assisted compression ignition reduces the NO x benefits of homogeneous charge compression ignition, as it increases the local combustion temperatures. To merge the advantages of the homogeneous charge compression ignition and the spark-assisted compression ignition combustion processes, a field-programmable gate array for detailed simulation of the physical gas exchange is combined with a rapid spark system. The low latency and computational speed of the field-programmable gate array allows the simulation process to be implemented in real time. When combined with the rapid reaction time of the high-frequency current-based rapid ignition system, a feedforward controller based on the cylinder pressure or heat release is realized. The developed model-based controller determines if a spark is required to assist the homogeneous charge compression ignition combustion process. The use of the field-programmable gate array and rapid ignition system allows for the calculation of combustion properties and controller output within 0.1 °CA. This article presents the development and experimental validation of the developed controller on a single-cylinder research engine. The combustion stability has been significantly improved as reflected in an improved standard deviation of the indicated mean effective pressure and a reduction of the combustion phasing variations. Furthermore, compared to a traditional homogeneous charge compression ignition system, the hydrocarbon emissions can be reduced, while maintaining low NO x emissions.

Authors 8

  1. David C. Gordon corresponding

    University of Alberta

    Affiliation as printed

    Department of Mechanical Engineering, University of Alberta, Edmonton, AB, Canada

  2. RWTH Aachen University

    Affiliation as printed

    Institute for Combustion Engines, RWTH Aachen University, Aachen, Germany

  3. SOKEN, Inc (Japan)

    Affiliation as printed

    SOKEN, INC., Research division 1, Research department 12, Tokyo, Japan

  4. FEV (Germany)

    Affiliation as printed

    FEV Europe GmbH, Aachen, Germany

  5. RWTH Aachen University

    Affiliation as printed

    Institute for Combustion Engines, RWTH Aachen University, Aachen, Germany

  6. RWTH Aachen University

    Affiliation as printed

    Mechatronic Systems for Combustion Engines, RWTH Aachen University, Aachen, Germany

  7. RWTH Aachen University

    Affiliation as printed

    Institute for Combustion Engines, RWTH Aachen University, Aachen, Germany

  8. University of Alberta

    Affiliation as printed

    Department of Mechanical Engineering, University of Alberta, Edmonton, AB, Canada

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References 27