Comparative Analysis of Combustion Characteristics and Emission Formation in Marine Diesel Engines Using Biofuels: Chemical Mechanism Analysis and Computational Fluid Dynamics Simulation
Сравнительный анализ характеристик сгорания и образования выбросов в судовых дизельных двигателях при использовании биотоплив: анализ химических механизмов и моделирование методами вычислительной гидродинамики
2025-05-30
SCID: 54.1/hzy77h3c
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Biodiesel blendsComputational fluid dynamicsMarine diesel enginesSpray penetrationZeldovich NOx mechanism
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Abstract (AI)
This study presents a comprehensive analysis of combustion mechanisms and emission formation in marine diesel engines using biodiesel blends through experimental validation and computational fluid dynamics simulation using Matlab 2024a. Two marine engines were tested—YANMAR 6HAL2-DTN (200 kW, 1200 rpm) and Niigatta Engineering 6L34HX (2471 kW, 600 rpm)—with biodiesel ratios B0, B20, B50, and B100 at loads from 10% to 100%. The methodology combines detailed experimental measurements of exhaust emissions, fuel consumption, and engine performance with three-dimensional CFD simulations employing k-ε RNG turbulence model, Kelvin–Helmholtz–Rayleigh–Taylor droplet breakup model, and extended Zeldovich mechanism for NOx formation modeling. Key findings demonstrate that biodiesel’s oxygen content (10–12% by mass) increases maximum combustion temperature by 25 °C at 50% load, resulting in NOx emissions increase of 5–13% across all loads. Conversely, CO emissions decrease by 7–10% due to enhanced oxidation reactions. CFD analysis reveals that B100 exhibits 12% greater spray penetration depth, 20% larger Sauter Mean Diameter, and 20–25% slower evaporation rate compared to B0. The thermal Zeldovich mechanism dominates NOx formation (>90%), with prompt-NO and fuel-NO contributions increasing from 6.5% and 0.3% for B0 to 7.2% and 1.3% for B100, respectively, at 25% load. Optimal injection timing varies with biodiesel ratio: 13–15° BTDC for B0 reducing to 10–12° BTDC for B100. These quantitative insights enable evidence-based optimization of marine diesel engines for improved environmental performance while maintaining operational efficiency.
Key Findings
1
Biodiesel blends reduce CO emissions by 7–10% across tested marine-engine operating conditions through enhanced oxidation.
2
Biodiesel’s 10–12% oxygen content raises maximum combustion temperature by 25 °C at 50% load and increases NOx emissions by 5–13%.
3
Compared with B0, B100 produces 12% greater spray penetration, 20% larger Sauter Mean Diameter, and 20–25% slower evaporation.
4
Optimal injection timing shifts from 13–15° BTDC for B0 to 10–12° BTDC for B100, supporting blend-specific engine optimization.
5
Thermal Zeldovich chemistry contributes over 90% of NOx formation; prompt-NO and fuel-NO shares increase with B100 at 25% load.
Research Object
Marine diesel engines (YANMAR 6HAL2-DTN and Niigatta Engineering 6L34HX) operating on biodiesel blends B0–B100
Research Subject
Combustion behavior, fuel-spray and evaporation characteristics, engine performance, and pollutant-emission formation—especially NOx and CO—under varying biodiesel ratios and loads
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2025-05-30
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