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Numerical Modeling and Validation of the Flow in a Fluidic Oscillator

机译:流体振荡器中流动的数值建模和验证

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A fluidic actuator is a device, which only needs one fluid supply to generate a self-induced and self-sustaining oscillating jet at its outlets. The present study investigates numerically the flow dynamics of a fluidic oscillator operated with water. Simulation results are validated with experimental data obtained with PIV and time-resolved pressure measurements. The numerical simulations are based on unsteady Reynolds-averaged Navier-Stokes equations (URANS) considering a turbulent, incompressible, and isothermal flow. Beforehand, a sensitivity analysis regarding the turbulence closure, the spatial grid solution, and the outlet geometry was conducted. In addition, to gain a deeper understanding of the flow dynamics a modal analysis is provided. It was found that the two-dimensional simulation employing the SST was sufficient to describe the flow field and dynamics qualitatively as well as quantitatively. However, nonlinear effects could only be observed in the three-dimensional computations.
机译:流体致动器是一种装置,仅需一个流体供应即可在其出口处产生自感应和自持的振荡射流。本研究从数值上研究了水驱动的流体振荡器的流动动力学。仿真结果通过使用PIV和时间分辨压力测量获得的实验数据进行验证。数值模拟基于不稳定的雷诺平均Navier-Stokes方程(URANS),其中考虑了湍流,不可压缩和等温流动。事先进行了关于湍流闭合,空间网格解和出口几何形状的敏感性分析。此外,为了更深入地了解流动动力学,还提供了模态分析。结果发现,采用SST进行的二维模拟足以定性和定量地描述流场和动力学。但是,非线性效应只能在三维计算中观察到。

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