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Multi-Modal Counterflow Flame Structure under Autoignitive Conditions

机译:自动化条件下的多模态逆流火焰结构

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In practical systems, combustion does not occur in asymptotic limits of nonpremixed flames, premixed flames, or autoignition but rather multiple modes that interact. In canonical configurations, multi-modal combustion is critical in the stabilization of lifted jet flames. At low temperature conditions, such flames are stabilized by a 'triple' flame consisting of regions of premixed and nonpremixed combustion. At high temperature conditions, autoignition is activated, and the role of autoignition versus premixed flame propagation in flame stabilization depends on the local residence time and the local flow speed. While detailed simulations of laminar lifted jet flames are computationally tractable, extension to DNS of turbulent lifted jet flames at reasonable Reynolds numbers is computationally intractable due to the large domain size required. Therefore, the counterflow configuration is investigated as a more compact alternative. In this work, a series of detailed simulations of DME/air laminar counterflow flames at elevated pressure are performed with variations in the stream compositions, temperatures, and velocities to provide flames spanning different combinations of combustion modes, specifically a nonpremixed flame, a 'triple' flame, and a series of flames with all three modes interacting. Similarities and differences between the counterflow flames and the lifted jet flames are explored.
机译:在实际系统中,燃烧不会发生在非增速火焰,预混火焰或自动的渐近限制中,但是相互作用的多种模式。在规范配置中,多模燃燃烧对于升降喷射火焰的稳定至关重要。在低温条件下,通过预混和非增殖燃烧的区域组成的“三重”火焰稳定这种火焰。在高温条件下,自燃被激活,自燃与火焰稳定中的预混火焰传播的作用取决于局部停留时间和局部流速。虽然层状升降喷射火焰的详细仿真是计算的,但是由于所需的大畴尺寸,在合理的雷诺数的湍流升降喷射火焰中的延伸是可计算的侵扰性。因此,研究了逆流配置作为更紧凑的替代方案。在这项工作中,一系列DME的详细模拟的/在升高的压力空气层流逆流的火焰与在流组合物,温度和速度的变化,以提供火焰跨越的燃烧模式,特别是nonpremixed火焰,一个“三重不同的组合进行'火焰,以及一系列火焰,所有三种模式相互作用。探索了逆流火焰与抬起喷射火焰之间的相似性和差异。

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