Flow control technology for diffuser cascades inspired by dragonfly wing corrugation structures
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摘要:
借鉴蜻蜓翅翼褶皱结构调控气流的仿生设计理念,提出一种沿流向阵列布置的非光滑表面结构,并将其应用于高负荷扩压叶栅。采用经实验验证的数值模拟方法,系统研究了沟槽位置参数与结构参数对叶栅气动性能的影响规律,并从宏观流场特征与近壁流动机理角度揭示其作用机制。结果表明:当沟槽布置于叶片吸力面75% ~100%轴向弦长范围内并采用合理的结构参数组合时,沟槽腔体内可形成稳定的驻留涡结构。该驻留涡通过与主流之间的周期性交换,在近壁区引入受限幅值的小尺度扰动,提高湍流间歇因子而未诱发高能量的大尺度湍动结构;同时,其对回流动量的局部滞留与重新分配作用,使分离区由高能不稳定状态向较为温和的受控湍化状态转变。由此,近尾缘吸力面分离涡结构得到显著削弱,通道堵塞程度降低,吸力面边界层发展状态得到有效改善。基于2倍设计点损失准则,在可用进气角范围内叶栅总压损失最大减小8.66%,且可用进气角右边界向高攻角方向拓展约 0.7°。
Abstract:Inspired by the flow-control capability of corrugated structures on dragonfly wings, a streamwise-arranged non-smooth surface was proposed and applied to a highly loaded diffuser cascade. Using a numerically validated simulation approach, the effects of groove location and structural parameters on the aerodynamic performance of the cascade were systematically investigated, and the underlying mechanisms were elucidated from both macroscopic flow features and near-wall flow physics. The results indicated that when the grooves were arranged within 75%—100% of axial chord length on the suction surface with an appropriate parameter combination, stable trapped vortices were formed inside the groove cavities. Through periodic interaction with the main flow, these trapped vortices introduced small-scale, amplitude-limited disturbances in the near-wall region, leading to an increase in the turbulence intermittency factor without triggering high-energy large-scale turbulent structures. Meanwhile, the local retention and redistribution of reversed-flow momentum promoted a transition of the separated region from a highly unstable, high-energy state to a more moderate and controlled turbulent state. Consequently, the separation vortex near the trailing edge on the suction side was significantly weakened, passage blockage was alleviated, and the development of the suction-side boundary layer was effectively improved. Based on the double design point loss criterion, the total pressure loss was reduced by up to 8.66% within the usable incidence angle range, and the upper boundary of the usable incidence angle was extended by approximately 0.7° toward higher values.
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表 1 叶型参数
Table 1. Blade profile parameters
设计参数 数值 弦长 C/mm 40 轴向弦长 Ca/mm 36.95 节距 t/mm 22 进口气流角 βin/(°) 42 出口气流角βout/(°) 90 进口马赫数 Main 0.67 进口雷诺数 Rec 560000 -
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