Thermal efficiency improvement and its mechanism at low load conditions in semi-premixed diesel combustion with twin peak shaped heat release

Kazuki Inaba, Yosuke Masuko, Yanhe Zhang, Yoshimitsu Kobashi, Gen Shibata, Hideyuki Ogawa

研究成果査読

抄録

Semi-premixed diesel combustion with a twin peak shaped heat release with the two-stage fuel injection (twin combustion) has the potential to establish efficient, low emission, and low noise operation. However, with twin combustion at low loads the indicated thermal efficiencies are poorer than at medium loads due to the lower combustion efficiencies. In this report, to increase the combustion efficiencies at low loads, the thermal efficiency related parameters were investigated in a 0.55 L single cylinder diesel engine. The results show that the indicated thermal efficiency improves with increases in the intake gas temperatures at low loads. However, at the higher loads where the combustion efficiencies are somewhat higher the indicated thermal efficiencies decrease with increases in the intake gas temperatures due to increases in the cooling losses. At the low load condition below 300 kPa IMEP, the indicated thermal efficiency is higher and the combustion noise is lower in the twin combustion than in the single premixed combustion. Further, the combustion characteristics of twin and single premixed diesel combustion at low loads were analyzed with CFD simulation, showing that in the twin combustion, re-oxidation of the CO is promoted by the second-stage combustion and the indicated thermal efficiencies are higher than in the single premixed combustion due to higher combustion efficiencies. Both the heat flux value and the high heat flux area in the twin combustion are smaller than in the single premixed combustion due to decreases in the quantities of burned gas near the combustion chamber wall due to the separating of the fuel injections.

本文言語English
ジャーナルSAE Technical Papers
2019-April
April
DOI
出版ステータスPublished - 4月 2 2019
外部発表はい
イベントSAE World Congress Experience, WCX 2019 - Detroit
継続期間: 4月 9 20194月 11 2019

ASJC Scopus subject areas

  • 自動車工学
  • 安全性、リスク、信頼性、品質管理
  • 汚染
  • 産業および生産工学

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