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Optimizing the Design of a Rijke Tube Experiment for Combustion Stability Model Identifiability

机译:为燃烧稳定性模型可识别性优化Rijke管实验的设计

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This paper presents the design of a thermoacoustically unstable combustor experiment for identifiability. We examine the impact of sensor placement, flame location, and acoustic excitation frequency on the Fisher identifiability of a one-dimensional combustion stability model's parameters. The model uses linear delay differential equations to describe both the acoustics and heat release dynamics in a laboratory combustor called a Rijke tube. We derive analytic expressions for the frequency-domain Fisher identifiability of the model's parameters. This leads to two key insights. First, excitation frequency, flame location, and sensor placement all have a significant impact on parameter identifiability. Second, the optimal excitation frequencies for identifiability are not strong functions of sensor placement but change with flame location. Building on these insights, the paper concludes by using a genetic algorithm to optimize the design of a Rijke tube experiment for thermoacoustic model identifiability.
机译:本文提出了一种用于可识别性的热声不稳定燃烧器实验的设计。我们检查传感器放置,火焰位置​​和声激发频率对一维燃烧稳定性模型参数的Fisher识别性的影响。该模型使用线性延迟微分方程来描述称为Rijke管的实验室燃烧室中的声学和放热动力学。我们导出了模型参数的频域Fisher可识别性的解析表达式。这导致两个关键的见解。首先,激发频率,火焰位置​​和传感器位置都对参数的可识别性产生重大影响。其次,可识别性的最佳激励频率不是传感器放置的强大功能,而是随火焰位置而变化。在这些见解的基础上,本文通过使用遗传算法对Rijke管实验的设计进行优化来实现热声模型可识别性。

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