Synergistic effects of gas-to-liquid pilot ignition and high rates of nitrogen-based simulated EGR on PREMIER combustion in dual-fuel hydrogen engines

Hydrogen-fueled compression-ignition engines offer a pathway to decarbonize heavy-duty propulsion but face a trade-off between thermal efficiency, NOx emissions, and narrow knock-free windows. Although EGR dilution and pilot-fuel reactivity control have each been studied independently, their combined effect on hydrogen PREMIER (PREmixed Mixture Ignition in the End-gas Region) combustion has not been systematically characterized. This study addresses that gap by comparing diesel and high-cetane Gas-to-Liquid (GTL) pilot fuels in a supercharged hydrogen dual-fuel engine, while varying nitrogen addition to isolate the inert dilution effect of simulated EGR (0–50%). GTL's superior ignitability shortened ignition delay and enhanced combustion stability versus diesel. Increasing inert EGR (nitrogen) dilution suppressed NOx by over 90% (360 to 30 ppm) via reduced peak temperatures, while sustaining knock-free PREMIER combustion and achieving a peak indicated thermal efficiency of 43.55% at ∼0.80 MPa IMEP. Coupling pilot-fuel reactivity control with EGR dilution enables safe, clean, high-efficiency hydrogen dual-fuel.

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Publication Details

Journal
International Journal of Hydrogen Energy
Published
2026-08-25
DOI
https://doi.org/10.1016/j.ijhydene.2026.157237
Primary Topic
Advanced Combustion Engine Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Synergistic effects of gas-to-liquid pilot ignition and high rates of nitrogen-based simulated EGR on PREMIER combustion in dual-fuel hydrogen engines

Yoshimitsu Kobashi, Nobuyuki Kawahara, Nirendra Nath Mustafi
International Journal of Hydrogen Energy
Advanced Combustion Engine Technologies
article

Synergistic effects of gas-to-liquid pilot ignition and high rates of nitrogen-based simulated EGR on PREMIER combustion in dual-fuel hydrogen engines

Yoshimitsu Kobashi, Nobuyuki Kawahara, Nirendra Nath Mustafi
article en

Abstract

Hydrogen-fueled compression-ignition engines offer a pathway to decarbonize heavy-duty propulsion but face a trade-off between thermal efficiency, NOx emissions, and narrow knock-free windows. Although EGR dilution and pilot-fuel reactivity control have each been studied independently, their combined effect on hydrogen PREMIER (PREmixed Mixture Ignition in the End-gas Region) combustion has not been systematically characterized. This study addresses that gap by comparing diesel and high-cetane Gas-to-Liquid (GTL) pilot fuels in a supercharged hydrogen dual-fuel engine, while varying nitrogen addition to isolate the inert dilution effect of simulated EGR (0–50%). GTL's superior ignitability shortened ignition delay and enhanced combustion stability versus diesel. Increasing inert EGR (nitrogen) dilution suppressed NOx by over 90% (360 to 30 ppm) via reduced peak temperatures, while sustaining knock-free PREMIER combustion and achieving a peak indicated thermal efficiency of 43.55% at ∼0.80 MPa IMEP. Coupling pilot-fuel reactivity control with EGR dilution enables safe, clean, high-efficiency hydrogen dual-fuel.

International Journal of Hydrogen EnergyVol. 270
Japan Society for the Promotion of Science
Affordable and clean energy
Openalex Percentile: Top 18%
Advanced Combustion Engine Technologies
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