Binteng Gu, Peilin Zhou, Ning Chen, M. P. Mujeeb-Ahmed, Lin Yang
2026.2.11Ships and Offshore Structures
Abstract
Hydrogen/diesel dual-fuel engines represent a viable solution for low-carbon ship propulsion. However, low-temperature intake air hinders flame propagation, leading to increased unburnt hydrogen. This study investigates diesel injection strategies of a marine-scale hydrogen–diesel dual-fuel engine to minimize unburnt hydrogen. The CFD model is developed from a PFI marine medium-speed engine. A parametric study was conducted to investigate the effect of injection timing, tilt angle, and injection duration. The results indicate that optimized injection strategies reduce the unburnt hydrogen from 50% to 1%. Adjusting the injection timing from 9.5°CA BTDC to 49.5°CA BTDC decreases unburnt hydrogen from 50% to 3%. Furthermore, modifying the tilt angle from 75.5° to 55.5° decreases it to 2%, while shortening the injection duration from 35°CA to 34°CA achieves the lowest unburnt hydrogen at 1%. These findings highlight the potential of advanced injection strategies in hydrogen combustion, contributing to the development of efficient hydrogen marine engines.
Citation format
GU, Binteng, et al. Numerical investigation of diesel injection effects on unburnt hydrogen emissions in a marine hydrogen–diesel dual-fuel engine. Ships and Offshore Structures, 2026: 1–19.