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Closed-Loop Control of Transition by Local Dynamic Surface Modification

机译:通过局部动态曲面修改对过渡进行闭环控制

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Direct numerical simulations were carried out in order reproduce the generation and control of transition on a flat plate by means of local dynamic surface modification. The configurations and flow conditions duplicate those of previous numerical investigations, and are similar to an experimental arrangement, which employed piezoelectrically driven actuators to impart small amplitude local deformation of the plate surface. In those studies, one actuator was located in the upstream plate region, and oscillated at the most unstable frequency of 250 Hz in order to generate small disturbances which amplified Tollmien-Schlichting instabilities. A second actuator placed downstream, was then oscillated at the same frequency, but with appropriate amplitudes in order to mitigate disturbance growth and delay the evolution of transition. Prior simulations employed an empirical process to determine optimal values of the control parameters. In the current effort, this process is replaced with a closed-loop control law. Numerical solutions are obtained to the two-dimensional and three-dimensional compressible Navier-Stokes equations, utilizing a high-fidelity numerical scheme and an implicit time-marching approach. Local surface modification of the plate is enforced via grid deformation. Results of the simulations are presented, and features of the flowfields are described. Comparisons are made between results obtained with the two control methods, and effectiveness of the closed-loop approach is evaluated.
机译:进行了直接数值模拟,以便通过局部动态表面修改在平板上重现过渡的生成和控制。构造和流动条件重复了先前的数值研究,并且类似于实验布置,该实验布置采用压电驱动的致动器来使板表面产生小幅度的局部变形。在这些研究中,一个致动器位于上游板区,并以最不稳定的250 Hz频率振荡,以产生小的扰动,从而加剧了Tollmien-Schlichting的不稳定性。然后,以相同的频率但以适当的振幅振荡第二下游的第二致动器,以减轻干扰的增长并延迟过渡的发展。先前的模拟采用经验过程来确定控制参数的最佳值。在当前的努力中,该过程被闭环控制律所代替。利用高保真数值方案和隐式时间前进方法,获得了二维和三维可压缩Navier-Stokes方程的数值解。板的局部表面改性是通过网格变形来实现的。给出了仿真结果,并描述了流场的特征。比较两种控制方法获得的结果,并评估了闭环方法的有效性。

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