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PREDICTION OF THE ACOUSTIC LOSSES OF A SWIRL ATOMIZER NOZZLE UNDER NON-REACTIVE CONDITIONS

机译:在非反应条件下预测旋流雾化器喷嘴的声学损失

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When predicting combustion instabilities in gas turbine combustion chambers, the complex geometry and three dimensional flow configurations are often neglected. However, these may have significant influence on the overall acoustic damping behavior of the system. An important element governing the flow inside a combustion chamber is the swirl atomizer nozzle. Therein, the flow is accelerated and a swirling fluid motion is imposed. At its exit considerable high flow velocities are reached and multiple shear layers are formed which discharge into the combustion chamber. To predict damping effects in these environments, acoustic-flow interaction processes need to be taken into account. These involve scattering and refraction of incident acoustic waves in shear layers, acoustic interaction with the unstable hydrodynamic shear layers as well as acoustic wall interaction processes. Their combined effect can be studied using acoustic scattering matrices. In this paper the acoustic scattering behavior of a lean injection system developed by Avio is predicted under non-reactive conditions and compared to experiments. The numerical method is very general and works as follows: First, the fluid dynamic field is computed using a Reynolds averaged Navier-Stokes turbulence model. Then, the linearized Navier-Stokes equations are solved in frequency space around the previously computed mean flow state. The complex three dimensionality of the nozzle configuration is taken into account as well as its corresponding flow field. Results are compared against experimental measurements of a swirl atomizer nozzle at atmospheric and elevated inlet temperatures. It is shown that the scattering behavior and therefore the acoustic-flow interactions are captured accurately.
机译:当预测燃气涡轮机燃烧室中的燃烧不稳定性时,通常忽略复杂的几何形状和三维流动配置。然而,这些可能对系统的整体声阻尼行为产生重大影响。控制燃烧室内流量的重要元件是旋流雾化器喷嘴。其中,流动加速并且施加旋流流体运动。在其出口处达到相当大的高流速,并且形成多个剪切层,该剪切层排出到燃烧室中。为了预测这些环境中的阻尼效果,需要考虑声学交互过程。这些涉及剪切层中入射声波的散射和折射,与不稳定的流体动力剪切层以及声壁相互作用过程的声学相互作用。可以使用声学散射矩阵研究它们的组合效果。在本文中,在非反应性条件下预测了Avio开发的瘦注射系统的声学散射行为,并与实验相比。数值方法非常一般,工作如下:首先,使用Reynolds平均Navier-Stokes湍流模型计算流体动态场。然后,线性化的Navier-Stokes方程在先前计算的平均流状态周围的频率空间中解决。将复杂的三维量的喷嘴配置考虑在内,以及相应的流场。将结果与大气和升高的入口温度下的旋流雾化器喷嘴进行比较。结果表明,准确地捕获散射行为并因此捕获声学相互作用。

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