The Unsteady Topology of Corner Separations

I. Dawkins, James V. Taylor, X. Ottavy, R. Miller
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引用次数: 1

Abstract

As a compressor is throttled three-dimensional separations develop in the corners between the blades and annulus endwall. Surprisingly, little is understood about the unsteady topology of these separations. One of the problems with studying corner separations is that it is often difficult to understand whether a particular flow structure in the separation is inherent to the separation itself, or due to the response of the separation to changes in the inlet flow. In this paper a novel experimental approach is taken with the aim of isolating the corner separation from external influences. A cascade is designed with the specific aim of precisely controlling the inlet flow. Contrary to previous work, it is shown that the key saddle and focus pair, which describes the time-mean topology of the corner separation on the endwall, moves smoothly and continuously as the incidence of the flow is raised. This behavior is shown to be the result of the time-resolved topology of the flow field, which comprises numerous saddle and focus pairs which are produced stochastically in regions of high shear strain rate. Most importantly, the separation is shown to exhibit an extremely low frequency behavior, changing in topology over timescales which are approximately 80 times the convection time through the blade passage. The behavior is shown to be intrinsic to the separation and causes the separation, for periods, to completely disappear from the endwall. This underlying unsteady structure of the separation is shown to have implications for the ability of RANS-based design codes to be able to accurately predict corner separations.
角点分离的非定常拓扑
当压气机被节流时,叶片和环空端壁之间的角落会产生三维分离。令人惊讶的是,人们对这些分离的不稳定拓扑结构知之甚少。研究拐角分离的问题之一是,通常很难理解分离中特定的流动结构是分离本身固有的,还是由于分离对进口流量变化的响应。本文采用了一种新的实验方法,目的是使角点分离不受外界影响。设计了一种以精确控制进口流量为目的的叶栅。与以往的工作相反,研究表明,描述端壁上角分离的时间平均拓扑结构的键鞍和焦点对随着流速的增加而平稳连续地运动。这种行为被证明是流场的时间分辨拓扑结构的结果,流场由许多鞍形和焦点对组成,这些鞍形和焦点对在高剪切应变率区域随机产生。最重要的是,分离表现出极低的频率行为,在大约80倍于通过叶片通道的对流时间的时间尺度上发生拓扑变化。这种行为被证明是分离的内在特征,并导致分离在一段时间内完全从端壁消失。这种分离的潜在不稳定结构被证明对基于ranss的设计规范能够准确预测角分离的能力具有影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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