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Instabilités thermo-acoustiques de combustion haute-fréquence dans les moteurs fusées

机译:火箭发动机高频燃烧的热声不稳定性

摘要

Rocket motors are confined environments where combustion occurs in extreme conditions. Combustion instabilities can occur at high frequencies ; they are tied to the acoustic modes of the combustion chamber. A common research chamber, CRC, allows us to study the response of a turbulent two-phase flame to acoustic oscillations of low or high amplitudes. The chamber is characterised under cold conditions to obtain, in particular, the relative damping coe_cient of acoustic oscillations. The structure and frequency of the modes are determined in the case where the chamber is coupled to a lateral cavity. We have used a powder gun to study the response to a forced acoustic excitation at high amplitude. The results guide us towards shorter flames. The injectors were then modified to study the combustion noise level as a function of injection conditions. The speed of the gaz determines whether the flames are attached or lifted. The noise level of lifted flames is higher. That of attached flames is proportional to the Weber number. The shorter flames whose length is less than the radius of the CRC, necessary condition to obtain an e_ective coupling, are the most sensitive to acoustic pertubations. The use of a toothed wheel at di_erent positions in the chamber allowed us to obtain informations on the origin of the thermo-acoustic coupling, main objective of this thesis. The flame is sensitive to pressure acoustic oscillations, with a quasi-zero response time. These observations suggest that under the conditions of the CRC, we observe essentially the response of chemical kinetics to pressure oscillations.
机译:火箭发动机是在极端条件下会发生燃烧的密闭环境中。燃烧不稳定性可能在高频下发生;它们与燃烧室的声学模式有关。通用研究室CRC使我们能够研究湍流两相火焰对低振幅或高振幅声振动的响应。该腔室的特征在于在寒冷条件下尤其是获得声波振荡的相对衰减系数。在腔室连接到侧腔的情况下,确定模式的结构和频率。我们已经使用粉末枪研究了在高振幅下对强制声激发的响应。结果引导我们走向更短的火焰。然后修改喷油嘴以研究作为喷射条件的函数的燃烧噪声水平。天然气的速度决定了火焰是被附着还是被点燃。抬高的火焰的噪音等级较高。附着的火焰与韦伯数成正比。长度小于CRC半径的较短火焰是获得有效耦合的必要条件,对声波扰动最为敏感。在腔室的不同位置使用齿轮使我们能够获得有关热声耦合起源的信息,这是本论文的主要目的。火焰对压力声振荡很敏感,响应时间为零。这些观察结果表明,在CRC的条件下,我们基本上观察到化学动力学对压力振荡的响应。

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  • 作者

    Cheuret François;

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  • 年度 2005
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  • 原文格式 PDF
  • 正文语种 fr
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