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首页> 外文期刊>Journal of Fluid Mechanics >Direct numerical simulation of transition in a sharp cone boundary layer at Mach 6: fundamental breakdown
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Direct numerical simulation of transition in a sharp cone boundary layer at Mach 6: fundamental breakdown

机译:在6马赫锐锥边界层过渡的直接数值模拟:基本击穿

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摘要

Direct numerical simulations (DNS) were performed to investigate the laminar-turbulent transition in a boundary layer on a sharp cone with an isothermal wall at Mach 6 and at zero angle of attack. The motivation for this research is to make a contribution towards understanding the nonlinear stages of transition and the final breakdown to turbulence in hypersonic boundary layers. In particular, the role of second-mode fundamental resonance, or (K-type) breakdown, is investigated using high-resolution 'controlled' transition simulations. The simulations were carried out for the laboratory conditions of the hypersonic transition experiments conducted at Purdue University. First, several low-resolution simulations were carried out to explore the parameter space for fundamental resonance in order to identify the cases that result in strong nonlinear interactions. Subsequently, based on the results from this study, a set of highly resolved simulations that proceed deep into the turbulent breakdown region have been performed. The nonlinear interactions observed during the breakdown process are discussed in detail in this paper. A detailed description of the flow structures that arise due to these nonlinear interactions is provided and an analysis of the skin friction and heat transfer development during the breakdown is presented. The controlled transition simulations clearly demonstrate that fundamental breakdown may indeed be a viable path to complete breakdown to turbulence in hypersonic cone boundary layers at Mach 6.
机译:进行了直接数值模拟(DNS),以研究在等温壁为6马赫且攻角为零的锐锥上边界层中的层流湍流过渡。这项研究的目的是为理解过渡的非线性阶段和高超声速边界层中湍流的最终破坏做出贡献。特别是,使用高分辨率“受控”跃迁仿真研究了第二模式基本共振或(K型)击穿的作用。在普渡大学进行的高超声速转变实验的实验室条件下进行了模拟。首先,进行了几个低分辨率的模拟,以探索基本共振的参数空间,以识别导致强烈非线性相互作用的情况。随后,根据这项研究的结果,进行了一系列深入解决湍流破坏区域的高度解析的模拟。本文详细讨论了在击穿过程中观察到的非线性相互作用。提供了对由于这些非线性相互作用而产生的流动结构的详细描述,并提供了对击穿过程中皮肤摩擦和传热发展的分析。受控的过渡模拟清楚地表明,基本的击穿可能确实是在6马赫高超声速锥边界层中完成对湍流的击穿的可行途径。

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