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Simulation-Guided, Model-Based Feedback Flow Control for a Pitching Turret

机译:基于仿真的,基于模型的变桨炮塔反馈流控制

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摘要

Closed-loop systems have been developed for controlling the flow above a three-dimensional turret while the hemispherical top of the turret rotates about the pitch axis. Separation and concomitant turbulence levels incurred through the pitching cycle were altered by suction jet slots circumscribing the aperture, which served as control input; an array of pressure sensors on the turret surface provided the controller with information about the state of the flow above the surface. The control objective was to minimize the separation and turbulence in the dynamic environment created by the articulating turret. The closed-loop control systems included dynamical and measurement-based estimators, regulators, filters, and compensators. These components were developed using both computational and experimental data, and the control systems were evaluated through a series of control-in-the-loop computation-fluid-dynamics simulations and wind-tunnel runs. The implementation of this suction flow-control system resulted in a decrease of fluctuating velocity over the'flat optical aperture. Initial simple proportional and the advanced proportional-integral closed-loop control systems were able to decrease the fluctuating velocity more efficiently than the steady suction of open-loop control. The more-advanced closed-loop controllers showed a better ability to track the trends of the separation and turbulence levels as the hemisphere of the turret pitched. The development of the controller design and numerical demonstration of the closed-loop feedback system is described in a companion paper.
机译:已经开发了闭环系统,用于控制三维转塔上方的流量,而转塔的半球形顶部围绕俯仰轴旋转。在俯仰循环中产生的分离和伴随的湍流水平通过包围孔的吸气喷射槽而改变,这些槽用作控制输入。转塔表面上的压力传感器阵列为控制器提供了有关表面上方流动状态的信息。控制目标是使在铰接转塔产生的动态环境中的分离和湍流最小化。闭环控制系统包括基于动态和基于测量的估计器,调节器,滤波器和补偿器。利用计算和实验数据开发了这些组件,并通过一系列的在环控制计算流体动力学模拟和风洞运行对控制系统进行了评估。该抽吸流量控制系统的实施导致在平坦光学孔径上的脉动速度减小。最初的简单比例控制系统和先进的比例积分闭环控制系统比稳定的开环控制系统能够更有效地降低脉动速度。先进的闭环控制器在转塔的半球倾斜时表现出更好的跟踪分离和湍流水平趋势的能力。随附论文描述了控制器设计的发展和闭环反馈系统的数值演示。

著录项

  • 来源
    《AIAA Journal》 |2012年第8期|p.1685-1696|共12页
  • 作者单位

    Syracuse University, Syracuse, New York 13244-1240;

    Syracuse University, Syracuse, New York 13244-1240;

    Syracuse University, Syracuse, New York 13244-1240;

    Clear Science Corporation, Harford, New York 13784-0233;

    Clear Science Corporation, Harford, New York 13784-0233;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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