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首页> 外文期刊>Journal of turbomachinery >The Internal Structure of the Tip Leakage Vortex Within the Rotor of an Axial Waterjet Pump
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The Internal Structure of the Tip Leakage Vortex Within the Rotor of an Axial Waterjet Pump

机译:轴向水射流泵转子内尖端泄漏涡的内部结构

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摘要

The complex flow field in the tip region of a turbomachine rotor, including the tip leakage flow and tip leakage vortex (TLV), has been studied for decades. Yet many associated phenomena are still not understood. This paper provides detailed data on the instantaneous and phase-averaged inner structures of the tip flow and evolution of the TLV. Observations are based on series of high resolution planar particle image velocimetry measurements performed in a transparent waterjet pump fitted into an optical refractive index-matched test facility. Velocity distributions and turbulence statistics are obtained in several meridional planes inside the rotor. We observe that the instantaneous TLV structure is composed of unsteady vortex filaments that propagate into the tip region of the blade passage. These filaments are first embedded into a vortex sheet, which is generated at the suction side of the blade tip, and then they wrap around each other and roll up into the TLV. We also find that the leakage vortex induces flow separation at the casing endwall and entrains the casing boundary layer with its counter-rotating vorticity. As it propagates in the rotor passage, the TLV migrates toward the pressure side of the neighboring blade. Unsteadiness associated with vortical structures is also investigated. We notice that, at early stages of the TLV evolution, turbulence is elevated in the vortex sheet, in the flow entrained from the endwall, and near the vortex core. Interestingly, the turbulence observed around the core is not consistent with the local distribution of turbulent kinetic energy production rate. This mismatch indicates that, given a TLV section, production likely occurs at preceding stages of the vortex evolution. Then, the turbulence is convected to the core of the TLV, and we suggest that this transport has substantial component along the vortex. We observe that the meandering of vortex filaments dominates the flow in the passage and we decompose the unsteadiness surrounding the TLV core to contributions from interlaced vortices and broadband turbulence. The two contributions are of the same order of magnitude. During late stages of its evolution, TLV breakdown occurs, causing rapid broadening of the phase-averaged core, with little change in overall circulation. Associated turbulence occupies almost half the width of the tip region of blade passage and turbulence production there is also broadly distributed. Proximity of the TLV to the pressure side of the neighboring blade also affects entrainment of flow into the incoming tip region.
机译:数十年来,研究了涡轮机转子的尖端区域中的复杂流场,包括尖端泄漏流和尖端泄漏涡(TLV)。然而,许多相关现象仍不为人所知。本文提供了有关叶尖流动的瞬时和相位平均内部结构以及TLV演变的详细数据。观察结果基于在装有光学折射率匹配测试设备的透明喷水泵中进行的一系列高分辨率平面颗粒图像测速仪测量。在转子内部的几个子午平面中获得了速度分布和湍流统计数据。我们观察到瞬时TLV结构由传播到叶片通道尖端区域的不稳定涡流丝组成。这些细丝首先被嵌入到涡流片中,该涡流片在叶尖的吸力侧产生,然后彼此缠绕并卷成TLV。我们还发现,泄漏涡旋在套管端壁处引起流分离,并以其反向旋转涡旋夹带套管边界层。当它在转子通道中传播时,TLV朝着相邻叶片的压力侧迁移。还研究了与旋涡结构相关的不稳定。我们注意到,在TLV演化的早期阶段,涡流在涡流片中,从端壁夹带的流中以及涡流核心附近都升高了。有趣的是,在堆芯周围观察到的湍流与湍动能产生速率的局部分布不一致。这种失配表明,在给定的TLV截面下,产生可能发生在涡旋演化的前几个阶段。然后,湍流被对流到TLV的核心,我们建议这种传输沿涡流具有实质性的成分。我们观察到,涡流细丝的曲折支配了通道中的流动,并且我们分解了TLV核心周围的不稳定,这是由交错的涡旋和宽带湍流引起的。这两个贡献的数量级相同。在其演化的后期,发生TLV分解,导致相平均核心的快速扩展,总体循环变化很小。伴随的湍流几乎占据了叶片通道的尖端区域的一半宽度,并且湍流的产生也广泛分布。 TLV靠近相邻刀片的压力侧也影响夹带进入进入的尖端区域的气流。

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