Multivariable optimisation of a homogeneous charge microwave ignition system

Schoening, L.-C. and Li, Y. (2013) Multivariable optimisation of a homogeneous charge microwave ignition system. In: 19th International Conference on Automation and Computing (ICAC) 2013. IEEE, pp. 1-5.

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Publisher's URL: http://ieeexplore.ieee.org/xpl/mostRecentIssue.jsp?punumber=6642546

Abstract

This paper attempts to address fundamental issues facing Internal Combustion Engines (ICEs) such as relatively low energy efficiency and high exhaust emissions. In particular, electromagnetic optimisation for Homogeneous Charge Microwave Ignition (HCMI) system is studied, aiming to combine the advantages of a Spark Ignition with those of a Compression Ignition system. Computational simulations of a HCMI system are carried out with three dimensional results of multi-variate changes, where the high computational load precludes a conventional iterative Computer-Aided Design process. Electromagnetic fields inside the combustion changer of the ICE are therefore optimised with a number of candidate antenna designs using various optimisation algorithms, including the Genetic Algorithm and the Nelder-Mead search algorithm. Interfaced with the Finite Element simulation software COMSOL that is used to model the engine cavity, these two a posteriori optimisation techniques are shown to be able to optimise specific system designs, with merits and drawbacks of the individual optimisation methods compared.

Item Type:Book Sections
Status:Published
Refereed:Yes
Glasgow Author(s) Enlighten ID:Schoening, Mr Lutz-Christoph and Li, Professor Yun
Authors: Schoening, L.-C., and Li, Y.
Subjects:T Technology > TL Motor vehicles. Aeronautics. Astronautics
College/School:College of Science and Engineering > School of Engineering > Electronics and Nanoscale Engineering
College of Science and Engineering > School of Engineering > Systems Power and Energy
Publisher:IEEE

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