Premixed flames in narrow heated channels of circular cross-section: Steady-state solutions, their linear stability analysis and the multiplicity of stable dynamic modes

IF 5.8 2区 工程技术 Q2 ENERGY & FUELS Combustion and Flame Pub Date : 2024-05-02 DOI:10.1016/j.combustflame.2024.113479
Vadim N. Kurdyumov, Daniel Fernández-Galisteo, Carmen Jiménez
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Abstract

Premixed flames in narrow heated circular channels subjected to a Poiseuille flow are investigated within the constant density model for various Lewis numbers using irreversible one-step Arrhenius kinetics. A global stability analysis of steady-state axisymmetric solutions is carried out, together with time-dependent direct numerical simulations. The analysis reveals the criteria for the appearance of oscillatory and three-dimensional cellular flame structures. The problem is also studied separately within the framework of the narrow-channel approximation.

Among the results obtained, the following can be singled out as the main ones. First, the multiplicity of stable dynamic modes, oscillatory and steady-state, taking place for the same set of parameters for flames with Le<1 is demonstrated. The actual occurrence of one mode or another depends on the initial conditions. Second, the appearance of chaotic regimes is shown for flames with Le>1. The chaotic dynamics occurs in a narrow range of values of the flow rate, with Feigenbaum period-doubling cascades taking place both before and after this interval. The results of this study could be useful in the development and use of small-scale combustion devices.

Novelty and significance statement: A systematic study of premixed flames in narrow heated circular channels in the presence of Poiseuille flow is carried out for various Lewis numbers using irreversible one-step Arrhenius kinetics. One of the novelties presented in the paper is the linear global stability analysis of steady state axisymmetric solutions of this problem, which has not been reported before. Also, for the first time, the existence of multiple stable dynamic modes, oscillatory and time-independent, which occurs at the same parameter values, is demonstrated for flames with Lewis number smaller than one. For flames with a Lewis number greater than one, cases with chaotic dynamics are found that manifest themselves in a narrow range of the flow rate. Finally, it is demonstrated that the Feigenbaum cycle-doubling cascade can appear before and after this interval of chaotic dynamics. Such analysis has not been reported before for this problem of flames in partially heated channels.

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圆形截面狭窄加热通道中的预混合火焰:稳态解及其线性稳定性分析和稳定动态模式的多重性
利用不可逆的一步阿伦尼乌斯动力学,在恒定密度模型中研究了各种路易斯数下受波瓦絮尔流影响的狭窄加热圆形通道中的预混火焰。对稳态轴对称解进行了全局稳定性分析,并进行了随时间变化的直接数值模拟。分析揭示了出现振荡和三维蜂窝状火焰结构的标准。此外,还在窄通道近似的框架内对该问题进行了单独研究。首先,证明了对于 Le<1 的火焰,在同一组参数下会出现多种稳定的动态模式(振荡模式和稳态模式)。一种或另一种模式的实际发生取决于初始条件。其次,Le<1 的火焰出现了混沌状态。混沌动力学发生在流速的一个较窄值范围内,在此区间之前和之后都出现了费根鲍姆周期加倍级联。这项研究的结果可能有助于小型燃烧装置的开发和使用:利用不可逆的一步阿伦尼乌斯动力学,对存在普伊塞耶流的狭窄加热圆形通道中的预混合火焰进行了系统研究。论文的新颖之处之一是对这一问题的稳态轴对称解进行了线性全局稳定性分析,这在以前从未报道过。此外,论文首次证明了路易斯数小于 1 的火焰存在多种稳定的动态模式,既有振荡模式,也有与时间无关的模式。对于路易斯数大于 1 的火焰,则发现了在较窄的流速范围内存在混乱动力学的情况。最后,还证明费根鲍姆循环加倍级联可以出现在混沌动力学区间的前后。对于部分加热通道中的火焰问题,这种分析以前从未报道过。
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来源期刊
Combustion and Flame
Combustion and Flame 工程技术-工程:化工
CiteScore
9.50
自引率
20.50%
发文量
631
审稿时长
3.8 months
期刊介绍: The mission of the journal is to publish high quality work from experimental, theoretical, and computational investigations on the fundamentals of combustion phenomena and closely allied matters. While submissions in all pertinent areas are welcomed, past and recent focus of the journal has been on: Development and validation of reaction kinetics, reduction of reaction mechanisms and modeling of combustion systems, including: Conventional, alternative and surrogate fuels; Pollutants; Particulate and aerosol formation and abatement; Heterogeneous processes. Experimental, theoretical, and computational studies of laminar and turbulent combustion phenomena, including: Premixed and non-premixed flames; Ignition and extinction phenomena; Flame propagation; Flame structure; Instabilities and swirl; Flame spread; Multi-phase reactants. Advances in diagnostic and computational methods in combustion, including: Measurement and simulation of scalar and vector properties; Novel techniques; State-of-the art applications. Fundamental investigations of combustion technologies and systems, including: Internal combustion engines; Gas turbines; Small- and large-scale stationary combustion and power generation; Catalytic combustion; Combustion synthesis; Combustion under extreme conditions; New concepts.
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