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Flame-spray interaction and combustion features in split-injection spray flames under diesel engine-like conditions

机译:在类似柴油发动机的条件下分流喷射喷雾火焰中的火焰-喷雾相互作用和燃烧特征

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摘要

In compression ignition engines, split-injection strategy has shown great benefits in reducing pollutant emissions and improving combustion efficiency. Spray-flame interaction involving in split injections is significantly complex, which affects the ignition process and even pollutant emissions. Therefore, the objective of this study is to investigate how the flame-spray interaction affects the subsequent ignition process and combustion features in split injections under diesel engine-like conditions. In this work, large eddy simulation coupled with a 54-species mechanism for split injections of n-dodecane is performed to study the effect of injection duration and dwell times (DTs) on spray-flame interactions and the ignition mechanism. The numerical model gives a reasonable agreement with the experiments in terms of the vapor penetration length, ignition delay times, mixture fraction distributions and the flame structures. The present study revealed that combustion for split injections is a multi-stage process and the ignition processes for the first and second injections are controlled by different mechanisms, namely autoignition for the first injection, and the accelerating ignition for the second injection due to the intermediate species and heating effect formed in the first injection. Moreover, the increase in dwell time between individual injections reduces the subsequently promoting ignition effect for the second injection and thus weakens the interacting process between the two injections. Consumption of the fuel in the first injection leads to a temperature increase and production of different species, which in turn accelerates the ignition of the second injection. Finally, the competition between the local flow timescale and chemical timescale is investigated based on the chemical explosive mode analysis (CEMA) methods. A balance between reaction and mixing processes dominates the combustion of the quasi-steady spray in the second injection with a short DT. However, the flame is controlled by autoignition when a longer DT is used. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在压燃式发动机中,分喷策略已显示出在减少污染物排放和提高燃烧效率方面的巨大优势。分次喷射中的喷雾-火焰相互作用非常复杂,这会影响着火过程甚至污染物排放。因此,本研究的目的是研究在类似于柴油机的条件下,火焰-喷雾的相互作用如何影响分次喷射的后续点火过程和燃烧特性。在这项工作中,进行了大涡模拟并结合了54种正十二烷的分次喷射机理,以研究喷射持续时间和停留时间(DTs)对喷雾-火焰相互作用和点火机理的影响。该数值模型在蒸气渗透长度,着火延迟时间,混合物分数分布和火焰结构方面与实验合理地吻合。本研究表明,分次喷射的燃烧是一个多阶段过程,并且第一次和第二次喷射的点火过程受不同机制控制,即第一次喷射的自燃和第二次喷射的加速点火是由于中间的。第一次注射时形成的种类和加热效果。此外,每次喷射之间的停留时间的增加减小了第二次喷射随后促进点火的效果,因此削弱了两次喷射之间的相互作用过程。第一次喷射中的燃料消耗会导致温度升高并产生不同的物质,从​​而加速第二次喷射的点火。最后,基于化学爆炸模式分析(CEMA)方法研究了局部流量时标与化学时标之间的竞争。反应和混合过程之间的平衡主导着短DT的第二次喷射中准稳态喷雾的燃烧。但是,使用更长的DT时,火焰会通过自动点火来控制。 (C)2019燃烧研究所。由Elsevier Inc.出版。保留所有权利。

著录项

  • 来源
    《Combustion and Flame》 |2019年第12期|204-221|共18页
  • 作者单位

    Tianjin Univ State Key Lab Engines 92 Weijin Rd Tianjin 300072 Peoples R China;

    Dalian Univ Technol Sch Energy & Power Engn Dalian 116024 Peoples R China;

    KAUST Clean Combust Res Ctr Thuwal 239556900 Saudi Arabia;

    UCL Dept Mech Engn Torrington Pl London WC1E 7JE England;

    Tianjin Univ State Key Lab Engines 92 Weijin Rd Tianjin 300072 Peoples R China|Loughborough Univ Dept Aeronaut & Automot Engn Loughborough LE11 3TU Leics England;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Split -injection; Ignition; Flame-spray interaction; Flame structure; CEMA;

    机译:分流注射;点火;火焰喷雾相互作用;火焰结构;CEMA;

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