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Determination of specific heat ratio and error analysis for engine heat release calculations

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  • Abbaszadehmosayebi, G.
  • Ganippa, Lionel

Abstract

The burnt fraction f of Wiebe equation has been shown to be dependent only on the newly defined parameter ‘combustion burn factor (Ci)’; and the benefits of expressing heat release rate with respect to Ci have been presented. The errors associated with the determination of apparent heat release rate (Ahrr) and the cumulative heat release (Cum.Hrr) from the measured cylinder pressure data and the assumed specific heat ratio (γ) was determined and compared. The γ affected the calculated Ahrr more than the cylinder pressure. Overestimation of γ resulted in an underestimation of the peak value of the Ahrr and vice versa, this occurred without any shift in the combustion phasing. A new methodology has been proposed to determine the instantaneously and mean value of γ for a given combustion. This new methodology has been applied to determine γ for a wide range of engine operating conditions and for different fuels.

Suggested Citation

  • Abbaszadehmosayebi, G. & Ganippa, Lionel, 2014. "Determination of specific heat ratio and error analysis for engine heat release calculations," Applied Energy, Elsevier, vol. 122(C), pages 143-150.
  • Handle: RePEc:eee:appene:v:122:y:2014:i:c:p:143-150
    DOI: 10.1016/j.apenergy.2014.01.028
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    1. Wei, Haiqiao & Zhu, Tianyu & Shu, Gequn & Tan, Linlin & Wang, Yuesen, 2012. "Gasoline engine exhaust gas recirculation – A review," Applied Energy, Elsevier, vol. 99(C), pages 534-544.
    2. Agarwal, Deepak & Singh, Shrawan Kumar & Agarwal, Avinash Kumar, 2011. "Effect of Exhaust Gas Recirculation (EGR) on performance, emissions, deposits and durability of a constant speed compression ignition engine," Applied Energy, Elsevier, vol. 88(8), pages 2900-2907, August.
    3. Mohammad Ghaffarpour & Alireza R. Noorpoor, 2007. "NO x reduction in diesel engines using rate shaping and pilot injection," International Journal of Automotive Technology and Management, Inderscience Enterprises Ltd, vol. 7(1), pages 17-31.
    4. Al-Hinti, I. & Samhouri, M. & Al-Ghandoor, A. & Sakhrieh, A., 2009. "The effect of boost pressure on the performance characteristics of a diesel engine: A neuro-fuzzy approach," Applied Energy, Elsevier, vol. 86(1), pages 113-121, January.
    5. Catania, A.E. & Ferrari, A., 2012. "Development and performance assessment of the new-generation CF fuel injection system for diesel passenger cars," Applied Energy, Elsevier, vol. 91(1), pages 483-495.
    6. Varuvel, Edwin Geo & Mrad, Nadia & Tazerout, Mohand & Aloui, Fethi, 2012. "Experimental analysis of biofuel as an alternative fuel for diesel engines," Applied Energy, Elsevier, vol. 94(C), pages 224-231.
    7. Baratta, Mirko & Misul, Daniela, 2012. "Development and assessment of a new methodology for end of combustion detection and its application to cycle resolved heat release analysis in IC engines," Applied Energy, Elsevier, vol. 98(C), pages 174-189.
    8. Zamboni, Giorgio & Capobianco, Massimo, 2012. "Experimental study on the effects of HP and LP EGR in an automotive turbocharged diesel engine," Applied Energy, Elsevier, vol. 94(C), pages 117-128.
    9. Muralidharan, K. & Vasudevan, D., 2011. "Performance, emission and combustion characteristics of a variable compression ratio engine using methyl esters of waste cooking oil and diesel blends," Applied Energy, Elsevier, vol. 88(11), pages 3959-3968.
    10. Labecki, L. & Cairns, A. & Xia, J. & Megaritis, A. & Zhao, H. & Ganippa, L.C., 2012. "Combustion and emission of rapeseed oil blends in diesel engine," Applied Energy, Elsevier, vol. 95(C), pages 139-146.
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    1. Christopher Depcik & Jonathan Mattson & Shah Saud Alam, 2023. "Open-Source Energy, Entropy, and Exergy 0D Heat Release Model for Internal Combustion Engines," Energies, MDPI, vol. 16(6), pages 1-30, March.

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