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October 2, 2025Energies1 citationsOpen Access

High-Performance Two-Stroke Opposed-Piston Hydrogen Engine: Numerical Study on Injection Strategies, Spark Positioning and Water Injection to Mitigate Pre-Ignition

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AMAlessandro MariniUniversity of Modena and Reggio EmiliaSBSebastiano BredaUniversity of Modena and Reggio EmiliaRTRoberto TonelliUniversity of Ferrara

Key Points

  • A 3D-CFD analysis identified pre-ignition and mixture stratification as key challenges for hydrogen engines.
  • Using dual-spark ignition reduced combustion duration by 27.5%, enhancing efficiency in the opposed-piston design.
  • Water injection showed a 55% evaporation efficiency, lowering in-cylinder temperatures to suppress pre-ignition.
  • Innovative multi-point injection systems demonstrate critical effects on mixture distribution for improved performance.

Abstract

In the pursuit of zero-emission mobility, hydrogen represents a promising fuel for internal combustion engines. However, its low volumetric energy density poses challenges, especially for high-performance applications where compactness and lightweight design are crucial. This study investigates the feasibility of an innovative hydrogen-fueled two-stroke opposed-piston (2S-OP) engine, targeting a specific power of 130 kW/L and an indicated thermal efficiency above 40%. A detailed 3D-CFD analysis is conducted to evaluate mixture formation, combustion behavior, abnormal combustion and water injection as a mitigation strategy. Innovative ring-shaped multi-point injection systems with several designs are tested, demonstrating the impact of injector channels’ orientation on the final mixture distribution. The combustion analysis shows that a dual-spark configuration ensures faster combustion compared to a single-spark system, with a 27.5% reduction in 10% to 90% combustion duration. Pre-ignition is identified as the main limiting factor, strongly linked to mixture stratification and high temperatures. To suppress it, water injection is proposed. A 55% evaporation efficiency of the water mass injected lowers the in-cylinder temperature and delays pre-ignition onset. Overall, the study provides key design guidelines for future high-performance hydrogen-fueled 2S-OP engines.

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Cite This Study

Marini et al. (2025) studied this question.

synapsesocial.com/papers/68de796d5b556a9128e1ae69https://doi.org/10.3390/en18195181
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