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Asymptotic analysis of detonation development at SI engine conditions using computational singular perturbation

Dimitrova, Iliana D.; Luong, Minh-Bau; Sanal, Sangeeth; Tingas, Efstathios-Al.; Im, Hong G.

Authors

Iliana D. Dimitrova

Minh-Bau Luong

Sangeeth Sanal

Hong G. Im



Abstract

The occurrence and intensity of the detonation phenomenon at spark-ignition (SI) engine conditions is investigated, with the objective to successfully predict super-knock and to elucidate the effect of kinetics and transport at the ignition front. The computational singular perturbation (CSP) framework is employed in order to investigate the chemical and transport mechanisms of deflagration and detonation cases in the context of 2D high-fidelity numerical simulations. The analysis revealed that the detonation development is characterised by: (i) stronger explosive dynamics and (ii) enhanced role of convection. The role of chemistry was also found to be pivotal to the detonation development which explained the stronger explosive character of the system, the latter being an indication of the system's reactivity. The role of convection was found to be enhanced at the edge of the detonating front. Moreover, the increased contribution of convection was found to be related mainly to heat convection. Remarkably, the detonation front was mainly characterised by dissipative and not explosive dynamics. Finally, diffusion was found to have negligible role to both examined cases.

Citation

Dimitrova, I. D., Luong, M.-B., Sanal, S., Tingas, E.-A., & Im, H. G. (2024). Asymptotic analysis of detonation development at SI engine conditions using computational singular perturbation. Combustion Theory and Modelling, 28(3), 282-316. https://doi.org/10.1080/13647830.2023.2281379

Journal Article Type Article
Acceptance Date Oct 24, 2023
Online Publication Date Nov 20, 2023
Publication Date 2024
Deposit Date Jan 5, 2024
Publicly Available Date Jan 5, 2024
Journal Combustion Theory and Modelling
Print ISSN 1364-7830
Electronic ISSN 1741-3559
Publisher Taylor & Francis
Peer Reviewed Peer Reviewed
Volume 28
Issue 3
Pages 282-316
DOI https://doi.org/10.1080/13647830.2023.2281379
Keywords detonation, super-knock, CSP, explosive dynamics
Public URL http://researchrepository.napier.ac.uk/Output/3445529

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