Prediction of leading-edge-vortex initiation using criticality of the boundary layer

IF 2.8 3区 工程技术 Q2 MECHANICS Theoretical and Computational Fluid Dynamics Pub Date : 2023-05-13 DOI:10.1007/s00162-023-00648-z
Hariharan Ramanathan, Ashok Gopalarathnam
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Abstract

The initiation of leading-edge-vortex formation in unsteady airfoil flows is governed by flow criticality at the leading edge. While earlier works demonstrated the promise of criticality of leading-edge suction in governing LEV shedding, this criterion is airfoil and Reynolds number dependent. In this work, by examining results from Navier–Stokes computations for a large set of pitching airfoil cases at laminar flow conditions, we show that the onset of flow reversal at the leading edge always corresponds to the boundary-layer shape factor reaching the same critical value that governs laminar flow separation in steady airfoil flows. Further, we show that low-order prediction of this boundary-layer criticality is possible with an integral-boundary-layer calculation performed using potential-flow velocity distributions from an unsteady panel method. The low-order predictions agree well with the high-order computational results with a single empirical offset that is shown to work for multiple airfoils. This work shows that boundary-layer criticality governs LEV initiation, and that a low-order prediction approach is capable of predicting this boundary-layer criticality and LEV initiation.

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利用边界层临界预测前缘涡起爆
非定常翼型流动中前缘涡的形成受前缘临界流动的控制。而早期的工作证明了前缘吸力在控制LEV脱落的临界性的承诺,这一标准是翼型和雷诺数依赖。在这项工作中,通过检查Navier-Stokes在层流条件下对大量俯仰角翼型情况的计算结果,我们表明前缘的流动反转的开始总是对应于边界层形状因子达到控制稳定翼型流动层流分离的相同临界值。此外,我们还表明,利用非定常面板法的位势流速度分布进行积分边界层计算,可以对边界层临界性进行低阶预测。低阶预测与高阶计算结果很好地同意与一个单一的经验偏移,被证明是为多个翼型工作。这项工作表明,边界层临界控制着LEV的启动,并且低阶预测方法能够预测这种边界层临界和LEV的启动。
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来源期刊
CiteScore
5.80
自引率
2.90%
发文量
38
审稿时长
>12 weeks
期刊介绍: Theoretical and Computational Fluid Dynamics provides a forum for the cross fertilization of ideas, tools and techniques across all disciplines in which fluid flow plays a role. The focus is on aspects of fluid dynamics where theory and computation are used to provide insights and data upon which solid physical understanding is revealed. We seek research papers, invited review articles, brief communications, letters and comments addressing flow phenomena of relevance to aeronautical, geophysical, environmental, material, mechanical and life sciences. Papers of a purely algorithmic, experimental or engineering application nature, and papers without significant new physical insights, are outside the scope of this journal. For computational work, authors are responsible for ensuring that any artifacts of discretization and/or implementation are sufficiently controlled such that the numerical results unambiguously support the conclusions drawn. Where appropriate, and to the extent possible, such papers should either include or reference supporting documentation in the form of verification and validation studies.
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