Synthetic GTL e-diesel as high-reactivity fuel for RCCI/MMDF heavy-duty combustion

The decarbonization of medium- and heavy-duty transport requires advanced combustion strategies capable of simultaneously reducing greenhouse gas emissions and pollutant formation while maintaining high efficiency under both steady-state and transient operation. In this context, Multi-Mode Dual-Fuel combustion has demonstrated strong potential for ultra-low NOx and soot emissions; however, the use of conventional diesel as the high-reactivity fuel limits its overall carbon reduction potential. This work experimentally evaluates the use of synthetic GTL e-diesel as high-reactivity fuel in a 7.7 L heavy-duty dual-fuel engine operating with gasoline as low-reactivity fuel under Multi-Mode Dual-Fuel combustion. The study includes a direct fuel substitution assessment, a dedicated full-map recalibration, and validation under the World Harmonized Stationary Cycle. The baseline comparison showed that GTL e-diesel advanced combustion phasing at low and medium loads, increasing brake thermal efficiency by approximately 1–2% in selected operating regions. GTL also reduced soot, CO, and HC emissions across most of the engine map, although NOx penalties appeared at low loads due to earlier combustion. A dedicated calibration based on air-path and injection optimization successfully restored EURO VI compliance over a broader operating region while preserving efficiency benefits. During World Harmonized Stationary Cycle operation, the optimized GTL configuration maintained stable combustion and reduced cycle-integrated NOx, soot, fuel consumption, CO, and HC emissions relative to diesel Multi-Mode Dual-Fuel combustion. Furthermore, Well-to-Wheel analysis showed approximately 20% lower CO₂ emissions compared to diesel operation, demonstrating the carbon reduction potential of GTL e-diesel in dual-fuel heavy-duty engines.

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Publication Details

Journal
Applied Thermal Engineering
Published
2026-09-11
DOI
https://doi.org/10.1016/j.applthermaleng.2026.133214
Primary Topic
Advanced Combustion Engine Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Synthetic GTL e-diesel as high-reactivity fuel for RCCI/MMDF heavy-duty combustion

Antonio García, Erasmo Iñiguez, Javier Monsalve-Serrano, Santiago Martinez-Boggio
Applied Thermal Engineering
Advanced Combustion Engine Technologies
article

Synthetic GTL e-diesel as high-reactivity fuel for RCCI/MMDF heavy-duty combustion

Antonio García, Erasmo Iñiguez, Javier Monsalve-Serrano, Santiago Martinez-Boggio
article en

Abstract

The decarbonization of medium- and heavy-duty transport requires advanced combustion strategies capable of simultaneously reducing greenhouse gas emissions and pollutant formation while maintaining high efficiency under both steady-state and transient operation. In this context, Multi-Mode Dual-Fuel combustion has demonstrated strong potential for ultra-low NOx and soot emissions; however, the use of conventional diesel as the high-reactivity fuel limits its overall carbon reduction potential. This work experimentally evaluates the use of synthetic GTL e-diesel as high-reactivity fuel in a 7.7 L heavy-duty dual-fuel engine operating with gasoline as low-reactivity fuel under Multi-Mode Dual-Fuel combustion. The study includes a direct fuel substitution assessment, a dedicated full-map recalibration, and validation under the World Harmonized Stationary Cycle. The baseline comparison showed that GTL e-diesel advanced combustion phasing at low and medium loads, increasing brake thermal efficiency by approximately 1–2% in selected operating regions. GTL also reduced soot, CO, and HC emissions across most of the engine map, although NOx penalties appeared at low loads due to earlier combustion. A dedicated calibration based on air-path and injection optimization successfully restored EURO VI compliance over a broader operating region while preserving efficiency benefits. During World Harmonized Stationary Cycle operation, the optimized GTL configuration maintained stable combustion and reduced cycle-integrated NOx, soot, fuel consumption, CO, and HC emissions relative to diesel Multi-Mode Dual-Fuel combustion. Furthermore, Well-to-Wheel analysis showed approximately 20% lower CO₂ emissions compared to diesel operation, demonstrating the carbon reduction potential of GTL e-diesel in dual-fuel heavy-duty engines.

Applied Thermal EngineeringVol. 306
Universidad de la República de Uruguay (UY), Universitat Politècnica de València (ES)
Conselleria de Innovación, Universidades, Ciencia y Sociedad Digital, Generalitat Valenciana
Affordable and clean energy
Openalex Percentile: Top 21%
Advanced Combustion Engine Technologies
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