首页> 外文会议>SAE World Congress and Exhibition >Investigations of Smoke Emission, Fuel Dilution and Pre-Ignition in a 2.0L Turbo-Charged GDI Engine
【24h】

Investigations of Smoke Emission, Fuel Dilution and Pre-Ignition in a 2.0L Turbo-Charged GDI Engine

机译:2.0L涡轮增压GDI发动机中的烟雾排放,燃料稀释和预点火的研究

获取原文

摘要

Engine downsizing has become a leading trend for fuel consumption reduction while maintaining the high specific power and torque output. Because of this, Turbo-charged Gasoline Direct Injection (TGDI) technology has been widely applied in passenger vehicles even though a number of technical challenges are presented during the engine development.This paper presents the investigation results of three key issues in the combustion development of a 2.0L TGDI engine at SAIC motor: fuel dilution, smoke emission and low speed stochastic pre-ignition(LSPI). The effect of the injection timing and injection strategy on fuel dilution and smoke emission, and LSPI are the focus of the experimental study. Dyno test results show that early fuel injection induces severe piston wetting and results in high smoke emission, reversely, retarding injection too far produces higher fuel dilution and increases smoke emission too due to the fuel spray impinging on the liner.. There is a short time for evaporation and mixing of the fuel based on the constrained injection timing window, particularly in the higher load operation.Test results on this engine show that using the double injection can effectively reduce LSPI occurrence, by reducing the liner impingement. This indicates that the higher fuel dilution on cylinder wall is likely one of the key mechanism for the occurrence of LSPI events in this engine.
机译:发动机缩小大小已成为燃料消耗降低的主要趋势,同时保持高特定功率和扭矩输出。因此,即使在发动机开发期间提出了许多技术挑战,涡轮带电汽油直接注射(TGDI)技术已广泛应用于乘用车。本文提出了燃烧开发中的三个关键问题的调查结果SAIC电机的2.0L TGDI发动机:燃料稀释,烟雾发射和低速随机预口点火(LSPI)。注射正时和注射策略对燃料稀释和烟雾发射的影响,以及LSPI是实验研究的重点。 Dyno测试结果表明,早期燃料喷射诱导严重的活塞润湿,并导致高烟发射,反向,延迟注入过得较远的燃料稀释,由于燃料喷雾撞击衬里的燃料喷雾也会增加烟雾发射。有很短的时间为了基于受约束的喷射正时窗口蒸发和混合燃料,特别是在较高的负载操作中,通过降低衬里冲击,该发动机上的最终结果表明,使用双注射可以有效地降低LSPI发生。这表明圆柱墙上的较高燃料稀释可能是该发动机中LSPI事件发生的关键机制之一。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号