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Research on the ammonia post-injection strategy for in-cylinder NOx abatement via SNCR in an ammonia/diesel dual-fuel direct-injection engine

  • Shikai Xing
  • , Xueyang Jia
  • , Jianbing Gao*
  • , Lianfeng Lai
  • , Xingce Cao
  • , Yunge Zhao
  • , Xianglong Li
  • , Sunchu Wu
  • , Yue Yu
  • *Corresponding author for this work
  • Hebei Normal University
  • Hebei Provincial Innovation Center for Wireless Sensor Network Data Application Technology
  • Ningde Normal University
  • Beijing Institute of Technology

Research output: Contribution to journalArticlepeer-review

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 languageEnglish
Article number102671
JournalJournal of the Energy Institute
Volume128
DOIs
Publication statusPublished - 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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