首页> 外文会议>Twenty-Ninth International Symposium on Combustion Hokkaido University >MODELING OF STRATIFIED COMBUSTION IN A DIRECT-IGNITION, SPARK-IGNITION ENGINE ACCOUNTING FOR COMPLEX CHEMISTRY
【24h】

MODELING OF STRATIFIED COMBUSTION IN A DIRECT-IGNITION, SPARK-IGNITION ENGINE ACCOUNTING FOR COMPLEX CHEMISTRY

机译:直接点火,火花点火引擎中分层燃烧的复杂化学模型

获取原文
获取外文期刊封面目录资料

摘要

Intake, mixing, and combustion processes are simulated in a direct-injection gasoline engine for three substantially different running conditions, including two full loads with homogeneous charge combustion and a part load with stratified charge combustion. The turbulent Flame Speed Closure (FSC) model is implemented into the FIRE code for the three-dimensional simulations of the combustion processes, which is the focus in the present paper. To take local mixture properties into account, a complex chemistry mechanism consisting of 100 species and 475 reactions is used to calculate the laminar flame speeds and chemical timescales required by the model. A large range of equivalence ratios, pressures, and temperatures are investigated and the combustion limits are determined. The FSC model is extended to capture the postflame oxidation between excess fuel from the rich mixture and excess air from the lean mixture. The modeling of the flow field, mixture composition, and combustion is compared with optical and pressure measurements in a test-rig engine showing good agreement. The simulation of the stratified charge combustion indicates that the major part of the unburned fuel after the combustion originates from the lean mixture. The calculated amount of unburned fuel is in good agreement with the measured HC emissions.
机译:在三种基本不同的运行条件下,在直喷式汽油发动机中模拟了进气,混合和燃烧过程,包括两个均质充气燃烧的满负荷和分层充气燃烧的部分负荷。在FIRE代码中实现了湍流火焰速度闭合(FSC)模型,以对燃烧过程进行三维模拟,这是本文的重点。为了考虑局部混合物的特性,使用由100种物质和475个反应组成的复杂化学机制来计算模型所需的层流火焰速度和化学时间标度。研究了大范围的当量比,压力和温度,并确定了燃烧极限。扩展了FSC模型,以捕获富混合气中过量燃料与贫燃混合物中过量空气之间的火焰后氧化。将流场,混合物组成和燃烧的模型与在试验装置发动机中的光学和压力测量结果进行了比较,显示出很好的一致性。分层装料燃烧的模拟表明,燃烧后未燃烧燃料的主要部分来自稀薄混合气。计算出的未燃烧燃料量与测得的HC排放量高度吻合。

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