Numerical Investigation of Hydrogen Substitution Ratio Effects on Spray Characteristics, Combustion Behavior, and Emissions in a Dual-Fuel Compression Ignition Engine

Hamdi, Takwa ORCID: https://orcid.org/0009-0003-6974-4446, Hamdi, Fathi ORCID: https://orcid.org/0000-0003-1404-1973, Molima, Samuel ORCID: https://orcid.org/0009-0006-1901-878X, Domínguez Pérez, Víctor Manuel ORCID: https://orcid.org/0000-0003-4662-3767, Rodríguez Fernández, José ORCID: https://orcid.org/0000-0002-8380-5351, Hernández Adrover, Juan José ORCID: https://orcid.org/0000-0003-4347-5666 and Chrigui, Mouldi ORCID: https://orcid.org/0000-0002-2775-6436 (2025). Numerical Investigation of Hydrogen Substitution Ratio Effects on Spray Characteristics, Combustion Behavior, and Emissions in a Dual-Fuel Compression Ignition Engine. "Machines", v. 13 (n. 10); p. 880. ISSN 2075-1702. https://doi.org/10.3390/machines13100880.

Descripción

Título: Numerical Investigation of Hydrogen Substitution Ratio Effects on Spray Characteristics, Combustion Behavior, and Emissions in a Dual-Fuel Compression Ignition Engine
Autor/es:
Tipo de Documento: Artículo
Título de Revista/Publicación: Machines
Fecha: 23 Septiembre 2025
ISSN: 2075-1702
Volumen: 13
Número: 10
Materias:
ODS:
Palabras Clave Informales: CI engines; Computational Fluid Dynamics; Diesel; Dual-fuel combustion; Duty; Hydrogen; Performance; Spray dynamics
Escuela: E.T.S.I. Industriales (UPM)
Departamento: Ingeniería Energética
Licencias Creative Commons: Reconocimiento - Sin obra derivada - No comercial

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Resumen

Hydrogen is a promising alternative fuel for internal combustion engines due to its high specific energy, fast flame speed, and carbon-free combustion. In dual-fuel operation, it offers a practical route to reducing greenhouse gas emissions while remaining compatible with existing engine hardware. This work evaluates how the hydrogen energy substitution ratio (HSR = 50, 70, and 90%) influences spray dynamics, combustion characteristics, and emissions in a heavy-duty compression ignition engine. Simulations are validated against experiments and use a URANS RNG k-epsilon framework with a hybrid combustion model: the Eddy Dissipation Concept (EDC) coupled with detailed kinetics (111 species, 768 reactions) for auto-ignition and diffusion burning of diesel, and a G-equation for propagation of a hydrogen-rich premixed flame. The results reveal clear spray-combustion linkages. At HSR 50, the higher Weber number induces stronger breakup, yielding a smaller Sauter mean diameter and higher number-averaged droplet velocity; at HSR 90, the spray is more stable and less atomized, with larger droplets and a shorter vapor penetration length. Increasing the HSR reduces unburned hydrocarbons (UHCs) by more than 50% from HSR 50 to HSR 90 while modestly altering combustion phasing (a later CA50 and a shorter burn duration due to faster hydrogen flame propagation). The validated model provides a practical tool for optimizing dual-fuel settings and HSR-EGR-SOI trade-offs to balance efficiency and emissions.

Proyectos asociados

Tipo
Código
Acrónimo
Responsable
Título
Gobierno de España
PID2022-142004OB-I00
Sin especificar
Sin especificar
Reformado de Alcoholes de cadena corta para motores de encendido por compresión más eficientes y limpios

Más información

ID de Registro: 94931
Identificador DC: https://oa.upm.es/94931/
Identificador OAI: oai:oa.upm.es:94931
URL Portal Científico: https://portalcientifico.upm.es/es/ipublic/item/10401269
Identificador DOI: 10.3390/machines13100880
URL Oficial: https://www.mdpi.com/2075-1702/13/10/880
Depositado por: iMarina Portal Científico
Depositado el: 19 Mar 2026 15:05
Ultima Modificación: 19 Mar 2026 15:05