首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >TIME-RESOLVED PIV MEASUREMENTS OF NON-REACTING FLOW FIELD IN A SWIRL-STABILIZED COMBUSTOR WITHOUT AND WITH POROUS INSERTS FOR ACOUSTIC CONTROL
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TIME-RESOLVED PIV MEASUREMENTS OF NON-REACTING FLOW FIELD IN A SWIRL-STABILIZED COMBUSTOR WITHOUT AND WITH POROUS INSERTS FOR ACOUSTIC CONTROL

机译:带有和没有用于声控制的多孔插入物的旋流稳定燃烧室中非增量流场的时间分辨PIV测量

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Combustion noise and thermo-acoustic instabilities are of primary importance in highly critical applications such as rocket propulsion systems, power generation, and jet propulsion engines. Mechanisms for combustion instabilities are extremely complex because they often involve interactions among several different physical phenomena such as unsteady flame propagation leading to unsteady flow field, acoustic wave propagation, natural and forced hydrodynamic instabilities, etc. In the past, we have utilized porous inert media (PIM) to mitigate combustion noise and thermo-acoustic instabilities in both lean premixed (LPM) and lean direct injection (LDI) combustion systems. While these studies demonstrated the efficacy of the PIM concept to mitigate noise and thermo-acoustic instabilities, the actual mechanisms involved have not been understood. The present study utilizes time-resolved particle image velocimetry to measure the turbulent flow field in a non-reacting swirl-stabilized combustor without and with PIM. Although the flow field inside the annulus of the PIM cannot be observed, measurements immediately downstream of the PIM provide insight into the turbulent structures. Results are analyzed using the Proper Orthogonal Decomposition (POD) method and show that the PIM alters the flow field in an advantageous manner by modifying the turbulence structures and eliminating the corner recirculation zones and precessing vortex core, which would ultimately affect the acoustic behavior in a favorable manner.
机译:在诸如火箭推进系统,发电和喷气推进发动机等高度关键的应用中,燃烧噪声和热声不稳定性至关重要。燃烧不稳定性的机制极其复杂,因为它们经常涉及几种不同物理现象之间的相互作用,例如不稳定的火焰传播导致不稳定的流场,声波传播,自然和强迫流体动力学不稳定性等。过去,我们利用多孔惰性介质(PIM)来减轻稀薄预混(LPM)和稀薄直接喷射(LDI)燃烧系统中的燃烧噪声和热声不稳定性。尽管这些研究证明了PIM概念在减轻噪声和热声不稳定性方面的功效,但尚未弄清涉及的实际机制。本研究利用时间分辨粒子图像测速技术在不带PIM和带PIM的非反应性旋流稳定燃烧室中测量湍流场。尽管无法观察到PIM环空内的流场,但在PIM下游的测量结果可以深入了解湍流结构。使用适当的正交分解(POD)方法对结果进行了分析,结果表明,PIM通过修改湍流结构,消除拐角再循环区域和旋进涡流核而以有利的方式改变了流场,这最终会影响管道中的声学性能。有利的方式。

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