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Numerical investigation of laminar separation control using vortex generator jets.

机译:使用涡流发生器射流进行层流分离控制的数值研究。

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摘要

Direct numerical simulations (DNS) are employed to investigate laminar boundary layer separation and its control by vortex generator jets (VGJs), i.e. by injecting fluid into the flow through an array of small holes. Particular focus is directed towards identifying some of the relevant physical mechanisms associated with VGJ control of low Reynolds number separation, as encountered in low-pressure turbine applications.; In a comparison of selected controlled cases, pulsed VGJs are shown to be much more effective than steady VGJs, when the same momentum coefficient is used for the actuation. The formation and the dynamics of steady as well as unsteady flow structures are subsequently investigated in more detail.; For steady VGJs, up to a certain "threshold" amplitude, angled injection is shown to be more effective than vertical injection, which is attributed to the fact that the generated longitudinal vortices remain closer to the wall while penetrating deeper into the boundary layer (in the spanwise direction). Beyond this "threshold" amplitude, however, vertical VGJ injection "suddenly" yields fully attached flow along the entire surface. This change in the global flow dynamics is explained by the formation of symmetric horseshoe-type vortices which are shown to augment the entrainment of high-momentum fluid from the free stream.; For pulsed VGJs, the increased control effectiveness is attributed to the fact that hydrodynamic instabilities of the underlying flow can be exploited. When pulsing with frequencies to which the separated shear layer is naturally unstable, instability modes are shown to develop into large-scale, spanwise coherent structures. These structures provide the necessary entrainment of high-momentum fluid to reattach the flow. In a series of additional simulations, the effects of varying the frequency as well as the duty cycle are investigated. While deviations from the "optimal" pulsing frequency are shown to result in increased separation losses, changes in the duty cycle have only a minor influence on the effectiveness of the control.
机译:直接数值模拟(DNS)用于研究层流边界层分离及其通过涡流发生器射流(VGJs)的控制,即通过将流体注入流中的一系列小孔来进行控制。如在低压涡轮机应用中所遇到的,特别着重于确定与低雷诺数分离的VGJ控制相关的一些相关物理机制。在对选定受控情况的比较中,当将相同的动量系数用于致动时,脉冲式VGJ表现出比稳定VGJ更为有效。随后将更详细地研究稳态和非稳态流动结构的形成和动力学。对于稳定的VGJ,直到一定的“阈值”振幅,角度注入比垂直注入更有效,这是由于这样的事实,即所产生的纵向涡流保持更靠近壁,同时更深地渗透到边界层(在翼展方向)。但是,超出此“阈值”幅度后,垂直“ VGJ”注入“突然”产生了沿整个表面的完全附着的流动。整体流动动力学的这种变化通过对称的马蹄形涡旋的形成来解释,涡旋的涡旋显示出增加了自由流中高动量流体的夹带。对于脉冲式VGJ,增加的控制有效性归因于以下事实:可以利用基础流动的水动力不稳定性。当以分离的剪切层自然不稳定的频率进行脉动时,不稳定模式显示为发展成大规模的,展向的相干结构。这些结构提供了高动量流体的必要夹带,以重新附着流动。在一系列其他仿真中,研究了频率变化以及占空比的影响。虽然显示出偏离“最佳”脉冲频率会导致分离损耗增加,但占空比的变化对控制效果的影响很小。

著录项

  • 作者

    Postl, Dieter.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 235 p.
  • 总页数 235
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 航空、航天技术的研究与探索;
  • 关键词

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