论文标题

使用静态输出反馈控制减少通道流中的瞬时能量增长

Reducing transient energy growth in a channel flow using static output feedback control

论文作者

Yao, Huaijin, Sun, Yiyang, Mushtaq, Talha, Hemati, Maziar S.

论文摘要

流动扰动的瞬态能量生长是层状到扰动的转变的重要机制,可以通过反馈控制来减轻。线性二次最佳控制策略在减少瞬态能量生长和抑制过渡方面已经表现出一些成功,但是使用基于传感器的输出反馈控制,很难实现可接受的最差案例性能。在这项研究中,我们研究了静态输出反馈控制器,以减少亚临界通道流的线性和非线性模拟中流动扰动的瞬态能量生长。静态输出反馈线性二次调节器〜(SOF-LQR)旨在减少由于流动扰动而引起的最坏情况的瞬态能量生长。控制器直接使用基于壁的测量值来最佳地调节流量,并从上和下通道壁上吸入壁正常吹和吸入。最佳的静态输出反馈收益是使用修改后的Anderson-Moore算法计算的,该算法通过利用Armijo型适应来加速合成问题的迭代解决方案。我们表明,SOF-LQR控制器可以减少由于流动扰动而导致的最坏情况的瞬态能量生长。我们的结果还表明,SOF-LQR控制器对雷诺数变化表现出稳健性。此外,直接的数值模拟表明,在流动干扰和跨度干扰下,设计的SOF-LQR控制器在流向干扰和延迟过渡下增加了层流到扰动的过渡阈值。这项研究的结果凸显了SOF-LQR控制器的优势,并为实现未来改进的过渡控制策略创造了机会。

Transient energy growth of flow perturbations is an important mechanism for laminar-to-turbulent transition that can be mitigated with feedback control. Linear quadratic optimal control strategies have shown some success in reducing transient energy growth and suppressing transition, but acceptable worst-case performance can be difficult to achieve using sensor-based output feedback control. In this study, we investigate static output feedback controllers for reducing transient energy growth of flow perturbations within linear and nonlinear simulations of a sub-critical channel flow. A static output feedback linear quadratic regulator~(SOF-LQR) is designed to reduce the worst-case transient energy growth due to flow perturbations. The controller directly uses wall-based measurements to optimally regulate the flow with wall-normal blowing and suction from the upper and lower channel walls. Optimal static output feedback gains are computed using a modified Anderson-Moore algorithm that accelerates the iterative solution of the synthesis problem by leveraging Armijo-type adaptations. We show that SOF-LQR controllers can reduce the worst-case transient energy growth due to flow perturbations. Our results also indicate that SOF-LQR controllers exhibit robustness to Reynolds number variations. Further, direct numerical simulations show that the designed SOF-LQR controllers increase laminar-to-turbulent transition thresholds under streamwise disturbances and delay transition under spanwise disturbances. The results of this study highlight the advantages of SOF-LQR controllers and create opportunities for realizing improved transition control strategies in the future.

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