Abstract
This research establishes a numerical simulation model of an ammonia/diesel dual-fuel (ADDF) direct-injection engine to investigate the effect of in-cylinder nitrogen oxide (NOx) reduction via triggering selective non-catalytic reduction (SNCR) reactions through ammonia post-injection strategy. It explores the effects of ammonia post-injection timing (PIT) and energy proportion of ammonia post-injection (PIP) on combustion and emission characteristics under a high-premixed combustion condition. The results show that delaying PIT reduces indicated thermal efficiency (ITE), and increasing PIP exacerbates this reduction, with a maximum reduction of 2.4%. NOx emissions decrease with the increase of PIP. When PIT = 60 °CA and PIP = 3%, the reduction effects of nitric oxide (NO) and nitrogen dioxide (NO2) are optimal, with reductions of 97.73% and 82.76%, respectively, but at the cost of a significant increase in nitrous oxide (N2O) and unburned ammonia (NH3) emissions; when PIT is advanced to 40 °CA, the reduction effect of NH3 weakens, the NOx emissions reduction amplitude decreases, while N2O and unburned NH3 emissions remain almost unchanged.
| Original language | English |
|---|---|
| Article number | 102671 |
| Journal | Journal of the Energy Institute |
| Volume | 128 |
| DOIs | |
| Publication status | Published - Oct 2026 |
Keywords
- Ammonia post-injection strategy
- Ammonia post-injection timing
- Ammonia/diesel dual-fuel
- Energy proportion of ammonia post-injection
- Selective non-catalytic reduction
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