燃气轮机再热燃烧室实验中与高频横向热声振荡相关的反应剪切层调制的观测

IF 1.4 4区 工程技术 Q3 ENGINEERING, MECHANICAL International Journal of Spray and Combustion Dynamics Pub Date : 2022-03-01 DOI:10.1177/17568277221088192
J. McClure, F. Berger, M. Bertsch, B. Schuermans, T. Sattelmayer
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引用次数: 1

摘要

本文研究了大气压下燃气轮机再热燃烧器的高频热声振荡和相关火焰动力学。对动态压力测量的检查揭示了在再热燃烧器的随机波动中随机出现的高频周期性振荡的爆发。对这些周期性行为爆发期间火焰动力学的分析表明,再热火焰反应剪切层中热量释放的增加与更大的热声驱动潜力有关。这种热释放的重新分布可能是由于自燃内核形成的随机性。为了确定驱动势背后潜在的火焰声耦合机制,研究了声循环上的相分辨火焰动力学,揭示了与第一横向本征模相关的振荡放热模式的存在。剪切层区域中的声场和这些放热振荡之间的同相相互作用表明,这种现象可能构成热声驱动机制。这是开发与再热燃烧系统相关的高频热声驱动机制模型的重要一步,这将允许在未来的设计中准确预测和缓解热声不稳定性。
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Observation of reactive shear layer modulation associated with high-frequency transverse thermoacoustic oscillations in a gas turbine reheat combustor experiment
This paper presents the investigation of high-frequency thermoacoustic oscillations and associated flame dynamics in an experimental gas turbine reheat combustor at atmospheric pressure. Examination of dynamic pressure measurements reveals bursts of high-frequency periodic oscillations which appear randomly amidst stochastic fluctuations in the reheat combustor. Analysis of the flame dynamics during these bursts of periodic behaviour reveals that increased heat release in the reactive shear layers of the reheat flame is associated with greater thermoacoustic driving potential. This redistribution of heat release is likely due to the stochastic nature of auto-ignition kernel formation. To determine the underlying flame-acoustic coupling mechanism behind the driving potential, phase-resolved flame dynamics over the acoustic cycle are investigated which reveal the presence of an oscillatory heat release pattern associated with the first transverse eigenmode. An in-phase interaction between the acoustic field and these heat release oscillations in the shear layer regions indicates that this phenomenon likely constitutes a thermoacoustic driving mechanism. This is an important step towards the development of models for high-frequency thermoacoustic driving mechanisms relevant to reheat combustion systems, which will allow accurate prediction and mitigation of thermoacoustic instabilities in future designs.
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来源期刊
International Journal of Spray and Combustion Dynamics
International Journal of Spray and Combustion Dynamics THERMODYNAMICS-ENGINEERING, MECHANICAL
CiteScore
2.20
自引率
12.50%
发文量
21
审稿时长
>12 weeks
期刊介绍: International Journal of Spray and Combustion Dynamics is a peer-reviewed open access journal on fundamental and applied research in combustion and spray dynamics. Fundamental topics include advances in understanding unsteady combustion, combustion instability and noise, flame-acoustic interaction and its active and passive control, duct acoustics...
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