Evaluation of Blow-Off Dynamics in Aero-Engine Combustors Using Recurrence Quantification Analysis

Ho-yin. Leung, E. Karlis, Y. Hardalupas, A. Giusti
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Abstract

The lean blow-out performance of an engine and the ability to re-ignite the flame, especially at high-altitude conditions, are important aspects for the safe operability of airplanes. The operability margins of the engine could be extended if it was possible to predict the occurrence of flame blowout from in-flight measurements and take actions to dynamically control the flame behaviour before complete extinction. In this work, the use of Re-currence Quantification Analysis (RQA), an established tool for the analysis of non-linear dynamical systems, is explored to reconstruct and study the blow-off dynamics starting from pressure measurements taken from blow-off experiments of an engine rig. It is shown that the dynamics of the combustor exhibit chaotic characteristics far away from blow-off and that the dynamics become more coherent as the blow-off condition is approached. The degree of determinism and recurrence rate are studied during the entire combustor’s dynamics, from stable flame to flame extinction. It is shown that the flame extinction is anticipated by an increase of the degree of determinism and recurrence rate at all investigated conditions, which indicates intermittent behavior of the combustor before the blow-off condition is reached. Therefore, in the configuration investigated here, the determinism and the recurrence rate of the system could be good predictors of blow-off occurrence and could potentially enable control actions to avoid flame extinction. This study opens up new possibilities for engine control and operability. The development of real-time RQA should be addressed in future research.
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用递归量化分析评价航空发动机燃烧室排气动力学
发动机的贫爆性能和重燃火焰的能力,特别是在高海拔条件下,是飞机安全运行的重要方面。如果能够从飞行测量中预测火焰爆裂的发生,并在完全熄灭之前采取行动动态控制火焰行为,则可以延长发动机的可操作性。在这项工作中,利用递归量化分析(RQA),一个已建立的非线性动力系统分析工具,探索重建和研究从一个发动机钻机的放空实验的压力测量的放空动力学。结果表明,燃烧室的动力学在远离吹灭处表现出混沌特征,随着吹灭条件的接近,动力学变得更加相干。研究了火焰从稳定到熄灭整个燃烧过程的确定性程度和复发率。结果表明,在所有研究条件下,确定性程度和复发率的增加都预示着火焰的熄灭,这表明燃烧室在达到吹灭条件之前具有间歇性行为。因此,在这里研究的配置中,系统的确定性和复发率可以很好地预测喷灭的发生,并可能使控制行动避免火焰熄灭。这项研究为发动机控制和可操作性开辟了新的可能性。实时RQA的发展是今后研究的重点。
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