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Efficient Prediction Of Helicopter Bvi Noise Under Different Conditionsof Wake And Blade Deformation

机译:不同尾流和叶片变形条件下直升机Bvi噪声的有效预测

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Predictions of helicopter BVI noise using three-dimensional Euler code with a single blade grid are conducted under three different conditions: BVI noise caused by (1) interaction between rotating blades and vortex shed from fixed wing vortex generator, (2) interaction between rotating blades and tip vortices shed from preceding blades, and (3) interaction between rotating blades with elastic deformation and shed tip vortices. In the CFD calculation, the Field Velocity Approach (FVA) and Scully's vortex model are used to import the wake information into the calculation grid and to determine the induced velocity made by tip vortices, respectively (cases 1-3). Beddoes generalized wake model is used to prescribe the tip vortices position in the wake (cases 2 and 3). Information about blade elastic deformation is imported from HART II project experimental data into the calculation (case 3). Acoustic analyses based on Ffowcs-Williams and Hawkings (FW-H) equation are conducted subsequently in each case. The results from the calculations show good agreement with experiments in all three cases, indicating that application of FVA, Scully's model, and Beddoes generalized wake model is effective for BVI noise prediction in this study, which is intended for low calculation cost using a single blade grid. Also, use of blade elastic deformation data in the calculation shows marked improvement in calculation precision. Consequently, the method used in this study can predict BVI noise under various conditions of wake or blade deformation with acceptable precision and low calculation cost.
机译:在三个不同条件下使用带有单个叶片网格的三维Euler代码对直升机BVI噪声进行预测:BVI噪声是由(1)旋转叶片与固定翼涡流发生器产生的涡流相互作用,(2)旋转叶片之间的相互作用引起的(3)具有弹性变形的旋转叶片与脱落的尖端涡之间的相互作用。在CFD计算中,分别使用场速度法(FVA)和Scully涡模型将尾流信息导入计算网格并确定尖端涡流产生的感应速度(情况1-3)。 Beddoes广义尾流模型用于规定尾流中尖端涡旋的位置(情况2和3)。有关叶片弹性变形的信息从HART II项目实验数据输入到计算中(案例3)。随后分别对基于Ffowcs-Williams和Hawkings(FW-H)方程的声学分析进行分析。计算结果表明,这三种情况下的实验结果均吻合良好,这表明在本研究中,FVA,Scully模型和Beddoes广义尾迹模型的应用对于BVI噪声预测是有效的,旨在降低使用单个刀片的计算成本网格。而且,在计算中使用叶片弹性变形数据显示出计算精度的显着提高。因此,本研究中使用的方法可以在不同的尾流或叶片变形条件下预测BVI噪声,且精度可接受且计算成本较低。

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