Experimental Closed-Loop Flow Control of a von Karman Ogive at High Incidence

被引:8
|
作者
Fagley, Casey [1 ]
Porter, Chris [1 ]
McLaughlin, Thomas [2 ]
机构
[1] US Air Force Acad, Dept Aeronaut, Colorado Springs, CO 80840 USA
[2] US Air Force Acad, Dept Aeronaut, Aeronaut Res Ctr, Colorado Springs, CO 80840 USA
关键词
CYLINDER WAKE; FOREBODY; ASYMMETRY; VORTICES;
D O I
10.2514/1.J053012
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The asymmetric vortex regime of a von Karman ogive with a fineness ratio of 3.5 is experimentally studied at a Reynolds number of 156,000. The wake of an axisymmetric bluff body is an ideal candidate for active feedback flow control because minute fluidic disturbances and geometry perturbations near the tip of the ogive get amplified through the flow's convective instability. The resulting disturbance interacts with the quasi-steady vortex location and produces a deterministic port or starboard asymmetric vortex state (i.e., side force). Accurate control or manipulation of this asymmetric vortex state holds the potential for increased maneuverability and stability characteristics of slender flight vehicles. For implementation of an active feedback flow-control system, plasma actuators at the tip of the ogive are used as the flow effector, and surface-mounted pressure sensors are used to estimate the vortex configuration in real time. A linear time invariant model developed from open-loop experimental tests and a proportional-integral control law are used to close the loop in the experimental setting. Closed-loop experimentation shows the ability to arbitrarily track a side force set point while also suppressing low-frequency fluctuations. Thus, the adopted model-based feedback flow-control approach is validated experimentally for a complex, three-dimensional flow.
引用
收藏
页码:2891 / 2898
页数:8
相关论文
共 50 条
  • [21] ON CLOSED-LOOP OPTIMAL CONTROL
    KLIGER, I
    IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 1965, AC10 (02) : 207 - &
  • [22] Model approaches for closed-loop property control for flow forming
    Riepold, Markus
    Arian, Bahman
    Vasquez, Julian Rozo
    Homberg, Werner
    Walther, Frank
    Trachtler, Ansgar
    ADVANCES IN INDUSTRIAL AND MANUFACTURING ENGINEERING, 2021, 3
  • [23] A temporal proper decomposition (TPOD) for closed-loop flow control
    Stanislav V. Gordeyev
    Flint O. Thomas
    Experiments in Fluids, 2013, 54
  • [24] Alleviating Unsteady Aerodynamic Loads with Closed-Loop Flow Control
    Williams, David R.
    King, Rudibert
    AIAA JOURNAL, 2018, 56 (06) : 2194 - 2207
  • [25] Modeling and closed-loop control of a medical flow generator appliance
    Scheel, Mathias
    Berndt, Andreas
    Simanski, Olaf
    AT-AUTOMATISIERUNGSTECHNIK, 2016, 64 (11) : 870 - 877
  • [26] Improving the flow forming process by a novel closed-loop control
    Kersting, Lukas
    Sander, Sebastian
    Arian, Bahman
    Rozo Vasquez, Julian
    Traechtler, Ansgar
    Homberg, Werner
    Walther, Frank
    MATERIAL FORMING, ESAFORM 2024, 2024, 41 : 1426 - 1435
  • [27] Closed-loop adaptive control of extreme events in a turbulent flow
    Farazmand, Mohammad
    Sapsis, Themistoklis P.
    PHYSICAL REVIEW E, 2019, 100 (03)
  • [28] Closed-loop experimental testing framework for structural control applications
    Pedersen, Simon
    Ulriksen, Martin D.
    STRUCTURAL CONTROL & HEALTH MONITORING, 2021, 28 (08):
  • [29] A temporal proper decomposition (TPOD) for closed-loop flow control
    Gordeyev, Stanislav V.
    Thomas, Flint O.
    EXPERIMENTS IN FLUIDS, 2013, 54 (03)
  • [30] Closed-loop flow control manages ATM channel bandwidth
    Copeland, D
    EDN, 1996, 41 (24) : 117 - &