燃气轮机再热燃烧室自激高频横向极限环振荡及相关火焰动力学实验

J. McClure, F. Berger, M. Bertsch, B. Schuermans, T. Sattelmayer
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引用次数: 2

摘要

本文研究了常压下具有自燃和稳定火焰区的新型燃气轮机再热燃烧室的高频热声极限循环振荡。在再热燃烧室面板处的动态压力测量显示,在矩形截面燃烧室的横向方向上存在3khz的高振幅周期性压力脉动。对声信号的进一步分析表明,这是一个经历极限环振荡的热声不稳定条件。灵敏度研究表明,这些高振幅极限环振荡只发生在某些条件下:即高功率设置,添加丙烷以增加自燃倾向。然后使用CH*化学发光技术研究空间分辨火焰动力学,锁相动态压力,从再热燃烧室的所有侧面捕获。这揭示了在不稳定频率下靠近燃烧室壁面的强烈热释放振荡,以及这些区域的火焰尖端的轴向运动和火焰的整体横向位移。热释放振荡和火焰运动均与声模同步发生。根据这些观测结果,推断了可能导致极限环振荡的热声驱动机制。在这种情况下,整个火焰-声学相互作用被认为是几种效应的叠加,观察结果表明,自燃-压力耦合以及由于声速场引起的火焰位移和变形的强烈影响。这些发现为开发预测方法的总体目标奠定了基础,以减轻未来几代具有顺序燃烧系统的燃气轮机中高频热声不稳定性的影响。
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Self-Excited High-Frequency Transverse Limit-Cycle Oscillations and Associated Flame Dynamics in a Gas Turbine Reheat Combustor Experiment
This paper presents the investigation of high-frequency thermoacoustic limit-cycle oscillations in a novel experimental gas turbine reheat combustor featuring both auto-ignition and propagation stabilised flame zones at atmospheric pressure. Dynamic pressure measurements at the faceplate of the reheat combustion chamber reveal high-amplitude periodic pressure pulsations at 3 kHz in the transverse direction of the rectangular cross-section combustion chamber. Further analysis of the acoustic signal shows that this is a thermoacoustically unstable condition undergoing limit-cycle oscillations. A sensitivity study is presented which indicates that these high-amplitude limit-cycle oscillations only occur under certain conditions: namely high power settings with propane addition to increase auto-ignition propensity. The spatially-resolved flame dynamics are then investigated using CH* chemiluminescence, phase-locked to the dynamic pressure, captured from all lateral sides of the reheat combustion chamber. This reveals strong heat release oscillations close to the chamber walls at the instability frequency, as well as axial movement of the flame tips in these regions and an overall transverse displacement of the flame. Both the heat release oscillations and the flame motion occur in phase with the acoustic mode. From these observations, likely thermoacoustic driving mechanisms which lead to the limit-cycle oscillations are inferred. In this case, the overall flame-acoustics interaction is assumed to be a superposition of several effects, with the observations suggesting strong influences from autoignition-pressure coupling as well as flame displacement and deformation due to the acoustic velocity field. These findings provide a foundation for the overall objective of developing predictive approaches to mitigate the impact of high-frequency thermoacoustic instabilities in future generations of gas turbines with sequential combustion systems.
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