Ammonia is receiving heightened attention as a carbon-neutral and hydrogen energy
carrier alternative fuel for compression ignition engines. However, replacing
diesel with ammonia poses significant challenges due to its low reactivity and
slow-burning nature, particularly at low-load conditions. This study
investigated the effect of ammonia energy share (AES) on the combustion
characteristics and performance of an ammonia–diesel dual-fuel (ADDF)
compression ignition engine operating under low loads and at a constant speed of
1800 RPM. The experiments were conducted at three different loads: 6 Nm, 13.5
Nm, and 18 Nm, corresponding to 11%, 25%, and 33% of full load, respectively. At
each load, the AES was incrementally increased, ranging from zero to its maximum
limit, while maintaining the COV of IMEP below 3% to ensure stable combustion.
Furthermore, CFD simulations were performed using a CONVERGE CFD model of the
engine to analyze the in-cylinder thermal and chemical behavior, and the model
was validated against the experimental data. The experimental results showed
that the AES reached 40%, 58%, and 61% for engine loads of 6 Nm, 13.5 Nm, and 18
Nm, respectively. Increasing AES reduced the mean in-cylinder temperature and
peak cylinder pressure, and shifted the peak pressure location toward the
expansion stroke. Combustion phasing was delayed, and combustion duration
increased with higher ammonia substitution. CFD analysis revealed weaker
high-temperature and OH reaction zones, along with reduced OH and H radical
activity, and increased persistence of NH2 and HO2
evolution at higher AES, indicating slower oxidation of the ammonia-containing
mixture. The results highlight the challenges associated with high-ammonia
operation at low loads and provide deeper insight into the combustion processes
governing ADDF engine performance.