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Aerodynamic Drag and Aeroacoustic Noise Mitigation of Flatback Airfoil with Spanwise Wavy Trailing Edge

机译:翼展成波浪形后缘的平底翼型的气动阻力和气动噪声缓解

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Spanwise wavy trailing edge designs are proposed as a way of reducing aerodynamic drag and aeroacoustic noise on flatback airfoils for future wind turbine blades. The wavy trailing edges are designed by varying sinusoidally the trailing edge thicknesses of flatback airfoils in the spanwise direction. Three dimensional Computational Fluid Dynamics (CFD) simulations are performed to verify the aerodynamic performance and aeroacoustic behaviors of the proposed wavy trailing edge flatback airfoils. Delayed Detached-Eddy Simulations (DDES) are used to resolve the attached turbulent boundary layer as well as the detailed vortex shedding behaviors around the airfoil trailing-edge region and nearby wake. GPU-accelerated simulations are conducted to reduce the otherwise massive computational costs. The effects of the wavy trailing edge design have been studied with two major design factors on the wave distribution: wave length and amplitude. The flow field results and vortex shedding behavior are presented for each different design case of wavy trailing edge airfoils and compared with typical flatback and sharp trailing edge airfoils. Potential acoustic noise levels resulting from the wavy trailing edge airfoils are studied and also compared with that predicted from typical flatback airfoil cases.
机译:提出了翼展波浪状的后缘设计,作为减少未来风力涡轮机叶片平背翼型上的空气阻力和空气声噪声的一种方法。波浪形的后缘是通过在展展方向上正弦变化后平翼型的后缘厚度而设计的。进行了三维计算流体动力学(CFD)仿真,以验证所提出的波浪形后缘平背型翼型的空气动力学性能和空气声学特性。延迟分离涡模拟(DDES)用于解析附着的湍流边界层以及机翼后缘区域和附近尾流周围的详细涡旋脱落行为。进行GPU加速仿真可减少原本庞大的计算成本。研究了波浪形后缘设计对波分布的两个主要设计因素的影响:波长和幅度。给出了波浪形后缘翼型的每个不同设计案例的流场结果和涡流脱落行为,并将其与典型的平底和锋利的后缘翼型进行了比较。研究了由波浪形后缘翼型引起的潜在声噪声级,并将其与典型的平背翼型情况下预测的噪声级进行了比较。

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