Transition mechanisms in a three-dimensional boundary-layer flow with pressure-gradient changeover
摘要:
The laminar breakdown of a three-dimensional flat-plate boundary-layer flow with favourable and ensuing adverse pressure gradient (APG), generic for an infinite swept wing, is investigated in detail by means of spatial direct numerical simulations. Emphasis is on transition mechanisms in the region of adverse pressure gradient where the undistorted laminar base flow also becomes unstable with respect to Tollmien–Schlichting (TS) waves that are most amplified if two-dimensional with respect to the local streamwise direction. The influence of finite-amplitude crossflow vortices, coming from the region of favourable pressure gradient, on the TS instability properties is investigated. It turns out that crossflow-vortex-induced secondary instabilities are the most amplified disturbances even for low-amplitude vortex modes. The TS waves act as generators of fundamental low-frequency secondary modes, but are neither important for their growth nor for breakdown. As for active disturbance control, any method aiming at attenuating two-dimensional TS waves must fail. On the other hand, the passive upstream-flow-deformation technique also delays transition in the APG region.
展开
关键词:
Theoretical or Mathematical/ boundary layers external flows flow instability flow simulation laminar flow laminar to turbulent transitions vortices waves/ pressure-gradient changeover laminar breakdown flat-plate boundary-layer flow swept wing spatial direct numerical simulations transition mechanisms Tollmien-Schlichting waves crossflow vortices secondary instabilities low-frequency secondary modes disturbance control passive upstream-flow-deformation/ A4715C Laminar boundary layers A4715F Stability of laminar flows A4710 General fluid dynamics theory, simulation and other computational methods A4735 Waves in fluid dynamics A4730 Rotational flow, vortices, buoyancy and other flows involving body forces
DOI:
10.1017/S0022112005003708
被引量:
年份:
2005
通过文献互助平台发起求助,成功后即可免费获取论文全文。
相似文献
参考文献
引证文献
辅助模式
引用
文献可以批量引用啦~
欢迎点我试用!