Combustion and soot evolution during engine cold starts: effects of injection timing and pressure in wall-impinging sprays

Wall-impinging spray occurrence increases significantly during cold start operations in heavy-duty diesel engines, particularly with varying injection strategies. Therefore, computational simulations were employed to investigate the above problems. The results indicate that injection timing primarily influences soot formation by the competing effects of spray-wall interaction and fuel film evaporation. Advancing the injection timing from −6 °CA to −13 °CA intensifies spray-wall interaction, which improves fuel-air mixing and consequently reduces soot emissions to a minimum at −13 °CA. At −20 °CA, the increased fuel film mass and evaporation rate dominate soot formation, leading to higher soot emissions. Premature injection timing at −24 °CA promotes intense premixed combustion, which accelerates the oxidation of soot and film vapor, leading to a second decrease in soot emissions. The influence of injection pressure on soot emissions is governed by two competing effects: the promotion of fuel-air mixing and the increase in fuel film mass. However, raising the pressure beyond 60 MPa causes a surge in fuel film mass and evaporation, which contributes to soot formation. Soot emissions are lowest at 60 MPa. The highest IMEP and lowest soot emissions are obtained at injection timing −13 °CA combined with injection pressure 60 MPa in this heavy-duty engine study.

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Publication Details

Journal
Case Studies in Thermal Engineering
Published
2026-09-11
DOI
https://doi.org/10.1016/j.csite.2026.108515
Primary Topic
Advanced Combustion Engine Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Combustion and soot evolution during engine cold starts: effects of injection timing and pressure in wall-impinging sprays

Chiafon Lee, Zhikun Cao, Guixian Zhang, Cong Liu et al.
Case Studies in Thermal Engineering
Advanced Combustion Engine Technologies
article

Combustion and soot evolution during engine cold starts: effects of injection timing and pressure in wall-impinging sprays

Chiafon Lee, Zhikun Cao, Guixian Zhang, Cong Liu, Zhi Geng, Junfen Li, Zhengyang Cui, Han Wu
article en

Abstract

Wall-impinging spray occurrence increases significantly during cold start operations in heavy-duty diesel engines, particularly with varying injection strategies. Therefore, computational simulations were employed to investigate the above problems. The results indicate that injection timing primarily influences soot formation by the competing effects of spray-wall interaction and fuel film evaporation. Advancing the injection timing from −6 °CA to −13 °CA intensifies spray-wall interaction, which improves fuel-air mixing and consequently reduces soot emissions to a minimum at −13 °CA. At −20 °CA, the increased fuel film mass and evaporation rate dominate soot formation, leading to higher soot emissions. Premature injection timing at −24 °CA promotes intense premixed combustion, which accelerates the oxidation of soot and film vapor, leading to a second decrease in soot emissions. The influence of injection pressure on soot emissions is governed by two competing effects: the promotion of fuel-air mixing and the increase in fuel film mass. However, raising the pressure beyond 60 MPa causes a surge in fuel film mass and evaporation, which contributes to soot formation. Soot emissions are lowest at 60 MPa. The highest IMEP and lowest soot emissions are obtained at injection timing −13 °CA combined with injection pressure 60 MPa in this heavy-duty engine study.

Case Studies in Thermal EngineeringVol. 86
Beijing Institute of Technology (CN), University of Illinois Urbana-Champaign (US), Zhengzhou University of Aeronautics (CN)
Education Department of Henan Province, Science and Technology Department, Henan Province
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Combustion Engine Technologies
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