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首页> 外文期刊>Journal of Fluid Mechanics >Effects of pressure gradient on the evolution of velocity-gradient tensor invariant dynamics on a controlled-diffusion aerofoil at Re-c=150 000
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Effects of pressure gradient on the evolution of velocity-gradient tensor invariant dynamics on a controlled-diffusion aerofoil at Re-c=150 000

机译:压力梯度对Re-C = 150 000的控制扩散稳定性动力学演变对速度梯度张量动力学的影响

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摘要

A weakly compressible flow direct numerical simulation of a controlled-diffusion aerofoil at $8<^>{circ }$ geometrical angle of attack, a chord-based Reynolds number of $Re_{c}=150,000$ and a Mach number of $M=0.25$ based on the free-stream velocity relevant to many industrial applications was conducted to improve the understanding of the impact of the pressure gradient on the development of turbulent structures. The evolution equations for the two invariants $Q$ and $R$ of the velocity-gradient tensor have been studied at various locations along the aerofoil chord on its suction side. The shape of the mean evolution of the velocity-gradient tensor invariants were found to vary strongly when the flow encounters favourable, zero and adverse pressure gradients and as well for different wall-normal locations. The coupling between the pressure-Hessian tensor and the velocity-gradient tensor was found to be the major factor that causes these changes and is greatly influenced by the mean pressure-gradient condition and the wall-normal distance. Striking differences exist from the mean trajectories of this coupling at least in the log layer and outer layer subject to different mean pressure gradients. The nonlinearity and viscous diffusion effects keep their respective invariant characters regardless of the pressure-gradient effects and wall-normal locations. The wall and the mean adverse pressure gradient were both found to suppress the vortical stretching features of the flow. These features are of great importance for the development of future turbulence models on wall-bounded flows, especially on surfaces with significant curvature such as cambered aerofoils and blades for which significant mean pressure gradients exist.
机译:一个弱可压缩的流动直接数值模拟控制扩散稳定性为8美元<^> { riC} $几何攻角,一个基于和弦的reynolds $ re_ {c} = 150 ,000 $和mach编号根据许多工业应用的自由流速度,根据许多工业应用的自由流速度为0.25美元,以改善对压力梯度对湍流结构发展的影响的理解。已经在其吸入侧的Aerofoil Chord的各个位置研究了两种不变性$ Q $和速度梯度张量的进化方程。当流动遇到有利,零和不利的压力梯度以及不同的壁线位置时,发现速度梯度张量不变量的平均演变的形状强烈地变化。发现压力 - Hessian张量和速度梯度张量之间的耦合是导致这些变化的主要因素,并且受到平均压力梯度条件和壁正常距离的大大影响。从该耦合的平均轨迹中至少存在醒目的差异,至少在日志层和外层经受不同的平均压力梯度的情况下。无论压力梯度效果和壁正常位置如何,非线性和粘性扩散效果保持各自的不变性。墙壁和平均不利的压力梯度都发现抑制了流动的涡流拉伸特征。这些特征对于在壁限流上的未来湍流模型的发展非常重要,尤其是在具有显着曲率的表面上,例如弧形翼型和叶片,其存在显着的平均压力梯度。

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