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Drag reduction in transitional linearized channel flow using distributed control

机译:使用分布式控制的过渡线性化通道流减阻

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This work focuses on feedback control of incompressible transitional Newtonian channel flow described by the two-dimensional linearized Navier-Stokes equations. The control objective is to use distributed feedback to achieve stabilization of the parabolic velocity profile, for values of the Reynolds number for which this profile is unstable, and therefore to reduce the frictional drag exerted on the lower channel wall compared to the open-loop values. The control system uses measurements of shear stresses on the lower channel wall and the control actuation is assumed to be in the form of electromagnetic Lorentz forces applied to the flow near the bottom wall. Galerkin's method is initially used to derive a high-order discretization of the linearized flow field that captures the flow instability and accounts for the effect of control actuation on all the modes. Then, a low-order approximation of the linearized flow field is derived and used for the synthesis of a linear output feedback controller that enforces stability in the high-order closed-loop system. The controller is applied to a simulated transitional linearized channel flow and is shown to stabilize the flow field at the parabolic profile and significantly reduce the drag on the lower channel wall. [References: 26]
机译:这项工作的重点是二维线性化Navier-Stokes方程描述的不可压缩过渡牛顿通道流的反馈控制。控制目标是使用分布式反馈来实现抛物线速度分布图的稳定(对于该分布图不稳定的雷诺数的值),因此与开环值相比,减小了施加在下部通道壁上的摩擦阻力。控制系统使用下通道壁上的剪应力的测量值,并且假定控制致动是以电磁洛伦兹力的形式施加到底壁附近的流体。 Galerkin的方法最初用于导出线性化流场的高阶离散化,该离散化捕获了流的不稳定性并说明了控制致动对所有模式的影响。然后,得出线性化流场的低阶近似值,并将其用于线性输出反馈控制器的合成,该控制器在高阶闭环系统中增强了稳定性。该控制器应用于模拟的过渡线性通道流,并显示为将流场稳定在抛物线轮廓上,并显着降低了下通道壁上的阻力。 [参考:26]

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