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首页> 外文期刊>Theoretical and Computational Fluid Dynamics >Data-driven selection of actuators for optimal control of airfoil separation
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Data-driven selection of actuators for optimal control of airfoil separation

机译:用于最优控制翼型分离的致动器的数据驱动选择

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We present a systematic approach for determining the optimal actuator location for separation control from input-output response data, gathered from numerical simulations or physical experiments. The Eigensystem realization algorithm is used to extract state-space descriptions from the response data associated with a candidate set of actuator locations. These system realizations are then used to determine the actuator location among the set that can drive the system output to an arbitrary value with minimal control effort. The solution of the corresponding minimum energy optimal control problem is evaluated by computing the generalized output controllability Gramian. We use the method to analyze high-fidelity numerical simulation data of the lift and separation angle responses to a pulse of localized body-force actuation from six distinct locations on the upper surface of a NACA 65(1)-412 airfoil. We find that the optimal location for controlling lift is different from the optimal location for controlling separation angle. In order to explain the physical mechanisms underlying these differences, we conduct controllability analyses of the flowfield by leveraging the dynamic mode decomposition with control algorithm. These modal analyses of flowfield response data reveal that excitation of coherent structures in the wake benefits lift control, whereas excitation of coherent structures in the shear layer benefits separation angle control.
机译:我们提出了一种系统方法,用于确定从输入输出响应数据的分离控制的最佳致动器位置,从数值模拟或物理实验中收集。 Eigensysey实现算法用于从与候选致动器位置组相关联的响应数据提取状态空间描述。然后,这些系统实现将用于确定可以将系统输出的致动器位置与最小的控制工作一起驱动到任意值。通过计算广义输出可控性克明人来评估相应的最小能量最佳控制问题的解决方案。我们使用该方法来分析电梯的高保真数值模拟数据,以及从Naca 65(1)-412翼型的上表面上的六个不同位置的局部体力致动的脉冲的高保真数值模拟数据。我们发现控制升程的最佳位置与用于控制分离角度的最佳位置不同。为了解释这些差异的基础机制,我们通过利用控制算法的动态模式分解来进行流场的可控性分析。这些模态分析的流场响应数据揭示了唤醒效益控制中相干结构的激发,而剪切层中的相干结构的激发有益于分离角度控制。

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