Experimental and numerical investigation of the effects of engine oil on combustion and particulate formation in a renewable bioethanol-gasoline engine

Ethanol is a promising biomass-derived renewable biofuel for internal combustion engines, offering substantial potential for carbon-emission reduction and knock suppression. This study combines experiments and numerical simulations to investigate the effects of engine oil on ethanol-gasoline combustion and emissions. Experiments were conducted to evaluate the influence of new and waste engine oil on flame temperature and ash morphology. A simplified kinetic model of engine oil, using C30H58 as a surrogate, was developed based on the HyChem method and coupled with an ethanol-gasoline sub-mechanism to establish a three-component mechanism suitable for CFD simulations. Three-dimensional simulations were then performed to examine the effects of ethanol and engine-oil blending ratios on in-cylinder combustion and soot formation. Results show that oil aging markedly deteriorates combustion completeness. The ethanol blending ratio exhibits a non-monotonic effect on combustion intensity: ratios ≥95% create an oxygen-rich environment that enhances combustion efficiency, whereas ratios <88% reduce oxygen availability, resulting in lower in-cylinder pressure and temperature. Engine oil addition increases pressure and temperature, shortens combustion duration, and strongly promotes soot formation; adding 6% engine oil increases soot emissions by 108.46% compared with pure ethanol. These findings support particulate-emission mitigation and the broader application of high-percentage renewable bioethanol fuels.

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Publication Details

Journal
Fuel Processing Technology
Published
2026-09-04
DOI
https://doi.org/10.1016/j.fuproc.2026.108575
Primary Topic
Biodiesel Production and Applications
Type
article
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Experimental and numerical investigation of the effects of engine oil on combustion and particulate formation in a renewable bioethanol-gasoline engine

Xiongbo Duan, Tamer M.M. Abdellatief, Shijian Chen, HanYi Wang et al.
Fuel Processing Technology
Biodiesel Production and Applications
article

Experimental and numerical investigation of the effects of engine oil on combustion and particulate formation in a renewable bioethanol-gasoline engine

Xiongbo Duan, Tamer M.M. Abdellatief, Shijian Chen, HanYi Wang, Le Ke, Feng Zhou, Jianqin Fu, Zichao Meng, Qiming Zhu
article en

Abstract

Ethanol is a promising biomass-derived renewable biofuel for internal combustion engines, offering substantial potential for carbon-emission reduction and knock suppression. This study combines experiments and numerical simulations to investigate the effects of engine oil on ethanol-gasoline combustion and emissions. Experiments were conducted to evaluate the influence of new and waste engine oil on flame temperature and ash morphology. A simplified kinetic model of engine oil, using C30H58 as a surrogate, was developed based on the HyChem method and coupled with an ethanol-gasoline sub-mechanism to establish a three-component mechanism suitable for CFD simulations. Three-dimensional simulations were then performed to examine the effects of ethanol and engine-oil blending ratios on in-cylinder combustion and soot formation. Results show that oil aging markedly deteriorates combustion completeness. The ethanol blending ratio exhibits a non-monotonic effect on combustion intensity: ratios ≥95% create an oxygen-rich environment that enhances combustion efficiency, whereas ratios <88% reduce oxygen availability, resulting in lower in-cylinder pressure and temperature. Engine oil addition increases pressure and temperature, shortens combustion duration, and strongly promotes soot formation; adding 6% engine oil increases soot emissions by 108.46% compared with pure ethanol. These findings support particulate-emission mitigation and the broader application of high-percentage renewable bioethanol fuels.

Fuel Processing TechnologyVol. 291
Central South University of Forestry and Technology (CN), Central South University (CN), Hunan University (CN), South University (US), Minia University (EG)
Openalex Percentile: Top 60%
Biodiesel Production and Applications
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