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Topological and chemical characteristics of turbulent flames at MILD conditions

机译:轻度条件下湍流火焰的拓扑和化学特性

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摘要

Dominant physical processes that characterize the combustion of a lean methane/air mixture, diluted with exhaust gas recirculation (EGR), under turbulent MILD premixed conditions are identified using the combined approach of Computational Singular Perturbation (CSP) and Tangential Stretching Rate (TSR). TSR is a measure to combine the time scale and amplitude of all active modes and serves as a rational metric for the true dynamical characteristics of the system, especially in turbulent reacting flows in which reaction and turbulent transport processes compete. Applied to the MILD conditions where the flame structures exhibit nearly distributed combustion modes, the TSR metric was found to be an excellent diagnostic tool to depict the regions of important activities. In particular, the analysis of turbulent DNS data revealed that the system's dynamics is mostly dissipative in nature, as the chemically explosive modes are largely suppressed by the dissipative action of transport. On the other hand, the convective transport associated with turbulent eddies play a key role in bringing the explosive nature into the system. In the turbulent MILD conditions under study, the flame structure appears nearly in the distributed combustion regime, such that the conventional statistics conditioned over the progress variable becomes inappropriate, but TSR serves as an automated and systematic way to depict the topology of such complex flames. In addition, further analysis of the CSP modes revealed a strong competition between explosive and dissipative modes, the former favored by hydrogen-related reactions and the convection of CH4, and the latter by carbon-related processes. This competition results in a much smaller region of explosive dynamics in contrast to the widespread existence of explosive modes. (C) 2019 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:使用计算奇异摄动(CSP)和切向拉伸率(TSR)的组合方法,确定了在湍流MILD预混合条件下以废气再循环(EGR)稀释的稀薄甲烷/空气混合物燃烧的主要物理过程。 TSR是一种将所有活动模式的时间尺度和幅度结合在一起的度量,并且是系统真实动力特性的合理度量,尤其是在反应和湍流传输过程相互竞争的湍流反应流中。将TSR度量应用于火焰结构表现出几乎分布的燃烧模式的轻度条件下,是描绘重要活动区域的出色诊断工具。尤其是,对湍流DNS数据的分析表明,该系统的动力学本质上是耗散的,因为化学爆炸模式在很大程度上受到传输耗散作用的抑制。另一方面,与湍流相关的对流输运在将爆炸性带入系统中起着关键作用。在研究中的湍流MILD条件下,火焰结构几乎出现在分布式燃烧状态中,因此以进度变量为条件的常规统计数据变得不合适,但是TSR却是一种自动而系统的方式来描绘这种复杂火焰的拓扑结构。此外,对CSP模式的进一步分析显示,爆炸和耗散模式之间存在激烈竞争,前者受氢相关反应和CH4对流的影响,后者受碳相关过程的影响。与广泛存在的爆炸模式相比,这种竞争导致爆炸动力学区域小得多。 (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10期|86-98|共13页
  • 作者单位

    King Abdullah Univ Sci & Technol Clean Combust Res Ctr Thuwal 239556900 Saudi Arabia|Natl Tech Univ Athens Dept Mech Sch Appl Math & Phys Sci GR-15773 Athens Greece;

    King Abdullah Univ Sci & Technol Clean Combust Res Ctr Thuwal 239556900 Saudi Arabia|UHI Perth Coll Crieff Rd Perth PH1 2NX Scotland;

    Tokyo Inst Technol Dept Mech Engn Meguro Ku Tokyo 1528550 Japan;

    King Abdullah Univ Sci & Technol Clean Combust Res Ctr Thuwal 239556900 Saudi Arabia;

  • 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

    MILD combustion; Turbulent flames; CSP; TSR;

    机译:轻度燃烧;湍急的火焰CSP;TSR;

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