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Inertial Effects in Nonstationary Models of Flame Front Evolution

机译:火焰锋面演化的非平稳模型中的惯性效应

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摘要

The objective of the present study is to formulate flame front evolution models capturing the effects of flame extinction, ignition, and oscillations in addition to the conventional regime of flame propagation. The basic equations constituting the one-dimensional thermodiffusion model of combustion are reduced to a system of two ordinary differential equations for the flame front coordinate and flame temperature. These equations admit solutions that describe, for example, ignition, extinction, and nonlinear oscillations of the flame, which are observed during premixed gas combustion in microchannels with an elevated wall temperature or during gasless combustion of condensed systems. Similarity of the basic thermodiffusion models assuming an infinitely small thickness of the chemical reaction zone allows application of a universal method to derive reduced equations in physically different systems. It is demonstrated that modeling of flame oscillations requires at least considering effects associated with flame acceleration (flame front "inertia" ) and the rate of flame temperature variation. The accuracy of the proposed model with inertial effects is checked by results of direct numerical simulations of the original equations.
机译:本研究的目的是制定除传统的火焰传播机制外还捕获火焰熄灭,着火和振荡影响的火焰前沿演化模型。构成一维燃烧热扩散模型的基本方程式简化为一个由两个常微分方程组成的系统,用于火焰前坐标和火焰温度。这些方程允许解决方案描述例如火焰的着火,熄灭和非线性振荡,这些在壁温升高的微通道中进行预混合气体燃烧时或在冷凝系统的无气燃烧时观察到。假设化学反应区的厚度无限小,基本热扩散模型的相似性允许应用通用方法来导出物理上不同系统中的简化方程。已经证明,对火焰振荡的建模至少需要考虑与火焰加速(火焰前部“惯性”)和火焰温度变化率相关的影响。原始方程的直接数值模拟结果验证了所提出模型具有惯性效应的准确性。

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