首页> 外文会议>ASME(American Society of Mechanical Engineers) Turbo Expo vol.2; 20070514-17; Montreal(CA) >MECHANISMS OF THE NONLINEAR RESPONSE OF A SWIRL FLAME TO HARMONIC EXCITATION
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MECHANISMS OF THE NONLINEAR RESPONSE OF A SWIRL FLAME TO HARMONIC EXCITATION

机译:旋流火焰对谐波激励的非线性响应机理

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This paper describes an experimental investigation of the amplitude dependent processes controlling the response of a swirling flame to harmonic excitation. Simultaneous measurements of the acoustic pressure, velocity, and CH* and OH* radical chemiluminescence were obtained over a range of forcing frequencies, amplitudes, and nozzle exit velocities. These were supplemented with OH planar laser induced fluorescence (PLIF) measurements at several representative conditions. The results presented show that there exist substantial nonlinearities in the flame response to forced oscillations. Furthermore, while the flame response monotonically and linearly increases with perturbation amplitude for low forcing levels, its behavior becomes much more complex at higher levels - this includes saturation as well as more complex, non-monotonic behaviors. Analysis of the OH PLIF images show that the observed dynamics result from a superposition of at least five flame/flow processes - (1) the oscillating velocity of the annular jet, oscillations in (2) position and (3) strength of the vortex breakdown bubble and separation bubble, (4) unsteady liftoff of the flame, and (5) an oscillating turbulent flame speed. These processes generally occur simultaneously, with non-monotonic dependencies upon forcing amplitude. This sheds some light on the complex overall flame heat release response measurements and suggests a fruitful area for detailed computational studies that can better elucidate the underlying physics controlling the phenomenon.
机译:本文描述了对振幅相关过程的实验研究,该过程控制了旋转火焰对谐波激励的响应。在一定的强迫频率,幅度和喷嘴出口速度范围内,可以同时测量声压,速度以及CH *和OH *自由基化学发光。在几个代表性条件下,还对它们进行了OH平面激光诱导荧光(PLIF)测量。给出的结果表明,火焰对强迫振荡的响应存在很大的非线性。此外,虽然对于低强迫水平,火焰响应随扰动幅度单调和线性增加,但在较高水平下,其行为变得更加复杂-这包括饱和以及更复杂的非单调行为。 OH PLIF图像的分析表明,观察到的动力学是由至少五个火焰/流动过程的叠加引起的-(1)环形射流的振荡速度,(2)位置的振荡和(3)涡旋破坏的强度气泡和分离气泡,(4)火焰不稳定升起,以及(5)振荡湍流火焰速度。这些过程通常同时发生,并且在强迫振幅上具有非单调依赖性。这为复杂的整体火焰热释放响应测量提供了一些启示,并为进行详细的计算研究提供了一个富有成果的领域,可以更好地阐明控制该现象的基本物理原理。

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