论文标题
在压力驱动的尖端泄漏流量中,超尖冲击波的锁定效果和识别逃避涡流摆脱模式的识别
Lock-in effect of over-tip shock waves and identification of the escaping vortex-shedding mode in pressure-driven tip leakage flow
论文作者
论文摘要
时间分辨的Schlieren可视化用于研究清除区域中尖端泄漏流的不稳定流量结构。在操作条件下,在风洞中创建和测试了一个常见的通用刀片尖端模型,从低s子到跨性别者。开发了一种多切割叠加技术,以实现更好的流动可视化。进行定量图像处理以提取流量结构和不稳定性模式。进行其他数值模拟,以帮助分类观察到的流量结构。傅立叶分析和动态模式分解揭示了不稳定的流量结构,例如过度尖端冲击振荡,剪切层拍打和涡流脱落。结果表明,在亚音速条件下,随着刀片载荷的增加,剪切层不稳定性的触发位置会单调延迟。但是,这种模式在跨性别条件下逆转。这意味着流动可压缩性,流动加速度和过度尖端冲击波的振荡是与尖端流量不稳定性有关的关键因素。观察到超尖的冲击波通过频率和剪切层拍打模式锁定。还观察到了一种间歇性流量模式,称为逃脱的涡旋 - 摆放模式。这些流量结构是控制尖端泄漏流的关键因素。基于观察到的流动动力学,提出了尖端泄漏流量结构和相关运动的示意图。最后,获得了一个实验数据集以验证未来的数值模拟。
Time-resolved schlieren visualization is used to investigate the unsteady flow structures of tip leakage flows in the clearance region. A common generic blade tip model is created and tested in a wind tunnel under operating conditions ranging from low-subsonic to transonic. A multi-cutoff superposition technique is developed to achieve better flow visualization. Quantitative image processing is performed to extract the flow structures and the instability modes. Additional numerical simulations are performed to help classify the observed flow structures. Unsteady flow structures such as over-tip shock oscillation, shear-layer flapping, and vortex shedding are revealed by Fourier analysis and dynamic mode decomposition. The results show that, under subsonic conditions, the trigger position of the shear layer instability is monotonically delayed as the blade loading increases; however, this pattern is reversed under transonic conditions. This implies that flow compressibility, flow acceleration, and the oscillation of over-tip shock waves are critical factors related to tip flow instabilities. The over-tip shock waves are observed to be locked-in by frequency and position with the shear-layer flapping mode. An intermittent flow mode, termed the escaping vortex-shedding mode, is also observed. These flow structures are key factors in the control of tip leakage flows. Based on the observed flow dynamics, a schematic drawing of tip leakage flow structures and related motions is proposed. Finally, an experimental dataset is obtained for the validation of future numerical simulations.