首页> 外文期刊>Combustion and Flame >Large-eddy simulation of dual-fuel spray ignition at different ambient temperatures
【24h】

Large-eddy simulation of dual-fuel spray ignition at different ambient temperatures

机译:不同环境温度下双燃料喷射点火的大涡模拟

获取原文
获取原文并翻译 | 示例
       

摘要

Here, a finite-rate chemistry large-eddy simulation (LES) solver is utilized to investigate dual-fuel (DF) ignition process of n-dodecane spray injection into a methane-air mixture at engine-relevant ambient temperatures. The investigated configurations correspond to single-fuel (SF) phi(CH4) = 0 and DF phi(CH4) = 0.5 conditions for a range of temperatures. The simulation setup is a continuation of the work by Kahila et al. (2019, Combustion and Flame) with the baseline SF spray setup corresponding to the Engine Combustion Network (ECN) Spray A configuration. First, ignition is investigated at different ambient temperatures in OD and 1D studies in order to isolate the effect of chemistry and chemical mechanism selection to ignition delay time (IDT). Second, 3D LES of SF and DF sprays at three different ambient temperatures is carried out. Third, a reaction sensitivity analysis is performed to investigate the effect of ambient temperature on the most sensitive reactions. The main findings of the paper are as follows: (1) DF ignition characteristics depend on the choice of chemical mechanism, particularly at lower temperatures. (2) Addition of methane to the ambient mixture delays ignition, and this effect is the strongest at lower temperatures. (3) While the inhibiting effect of methane on low- and high-temperature IDT's is evident, the time difference between these two stages is shown to be only slightly dependent on temperature. (4) Reaction sensitivity analysis indicates that reactions related to methane oxidation are more pronounced at lower temperatures. The provided quantitative results indicate the strong ambient temperature sensitivity of the DF ignition process. (C) 2020 The Author(s). Published by Elsevier Inc. on behalf of The Combustion Institute.
机译:这里,利用有限速率化学大涡模拟(LES)求解器来研究在发动机相关的环境温度下的甲烷 - 空气混合物中的双燃料(DF)点火过程。所研究的配置对应于单燃料(SF)PHI(CH4)= 0和DF PHI(CH4)= 0.5条条件,用于一系列温度。模拟设置是Kahila等人的工作继续。 (2019年,燃烧和火焰)与基线SF喷射设置对应于发动机燃烧网络(ECN)喷涂配置。首先,在OD和1D研究的不同环境温度下研究了点火,以分离化学和化学机制选择对点火延迟时间(IDT)的影响。其次,进行三种不同的环境温度下的3D LES SF和DF喷雾。第三,进行反应敏感性分析以研究环境温度对最敏感反应的影响。本文的主要发现如下:(1)DF点火特性取决于化学机制的选择,特别是在较低温度下。 (2)将甲烷加入环境混合物延迟点火,这种效果在较低温度下最强。 (3)虽然甲烷对低温和高温IDT的抑制作用是明显的,但是这两个阶段之间的时间差显示仅略微依赖于温度。 (4)反应敏感性分析表明与甲烷氧化有关的反应在较低温度下更明显。提供的定量结果表明了DF点火过程的强环境温度敏感性。 (c)2020提交人。由elsevier公司发布代表燃烧研究所。

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