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An analytical model for the prediction of the dynamic response of premixed flames stabilized on a heat-conducting perforated plate

机译:预测在导热多孔板上稳定的预混火焰动态响应的分析模型

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摘要

The dynamic response of a premixed flame stabilized on a heat-conducting perforated plate depends critically on their coupled thermal interaction. The objective of this paper is to develop an analytical model to capture this coupling. The model predicts the mean flame base standoff distance; the flame base area, curvature and speed; and the burner plate temperature given the operating conditions; the mean velocity, temperature and equivalence ratio of the reactants; thermal conductivity and the perforation ratio of the burner. This coupled model is combined with our flame transfer function (FTF) model to predict the dynamic response of the flame to velocity perturbations. We show that modeling the thermal coupling between the flame and the burner, while accounting for the two-dimensionality of the former, is critical to predicting the dynamic response characteristics such as the overshoot in the gain curve (resonant condition) and the phase delay. Good agreement with the numerical and experimental results is demonstrated over a range of conditions. © 2012 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:稳定在导热多孔板上的预混火焰的动态响应主要取决于它们的耦合热相互作用。本文的目的是开发一个分析模型来捕获这种耦合。该模型可预测平均火焰基准距离。火焰底面积,曲率和速度;给定燃烧器板温度的工作条件;反应物的平均速度,温度和当量比;导热率和燃烧器的穿孔率。该耦合模型与我们的火焰传递函数(FTF)模型结合在一起,可以预测火焰对速度扰动的动态响应。我们表明,对火焰和燃烧器之间的热耦合进行建模,同时考虑到前者的二维性,对于预测动态响应特性(例如增益曲线中的过冲(谐振条件)和相位延迟)至关重要。在一定条件下证明了与数值和实验结果的良好一致性。 ©2012燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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