Identification-Based Closed-Loop Control Strategies for a Cylinder Wake Flow

被引:7
|
作者
Atam, Ercan [1 ]
Mathelin, Lionel [1 ]
Cordier, Laurent [2 ,3 ]
机构
[1] CNRS, Lab Informat Mecan & Sci Ingenieur, Rue John von Neumann,Campus Univ Orsay Bat 508, F-91405 Orsay, France
[2] CNRS, Ecole Natl Super Mecan & Aerotech, Inst PPRIME, F-86962 Chasseneuil, France
[3] Univ Poitiers, Inst Super Aeronaut & Espace, F-86962 Chasseneuil, France
关键词
ARX-ARMAX; closed-loop fluid flow control; cylinder flow drag minimization; gain-scheduling; LQG; multi-model predictive control (M-MPC); system identification; MODE DECOMPOSITION; BLUFF-BODY; REDUCTION;
D O I
10.1109/TCST.2016.2604779
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Four closed-loop control strategies are discussed to reduce the drag of a cylinder wake flow: Linear Quadratic Gaussian (LQG) control, gain-scheduled LQG (GS-LQG) control, gain-scheduled PI control, and multimodel predictive control (M-MPC). The control models are obtained in an input-output framework through ARMAX (for LQG control), multi-ARMAX (for GS-LQG control and M-MPC), and multi-ARX (for gain-scheduled PI control). The use of system identification for the underlying flow control problem gets rid of the difficult task of developing accurate and robust reduced-order models for the Navier-Stokes (NS) equations. The control is introduced through sucking of fluid through the cylinder surface. The drag on the cylinder is reduced for all control methods. The robustness of all control strategies is tested against unmodeled disturbances and/or dynamics through a detailed simulation of an NS equation-based model by varying in time the Reynolds number around its nominal value 200. For the considered cylinder wake, the M-MPC approach is the best solution. The application of the presented closed-loop control algorithms for the cylinder drag control as a benchmark problem constitutes promising solutions for other related flow control problems in industries.
引用
收藏
页码:1488 / 1495
页数:8
相关论文
共 50 条
  • [21] CLOSED-LOOP IDENTIFICATION OF HEMODYNAMIC CONTROL-SYSTEMS
    KENET, RO
    TUTEUR, FB
    COHEN, RJ
    BIOMATERIALS MEDICAL DEVICES AND ARTIFICIAL ORGANS, 1986, 14 (1-2): : 38 - 38
  • [22] MODEL IDENTIFICATION FOR CLOSED-LOOP CONTROL OF PROPOFOL IN CHILDREN
    Khosravi, Sara
    Van Heusden, Klaske
    Stinson, Jonathan
    Dumont, Guy A.
    Ansermino, J. Mark
    ANESTHESIA AND ANALGESIA, 2012, 115
  • [23] Weighted closed-loop identification and control of civil structure
    Skelton, RE
    Lu, JB
    INDUSTRIAL AND COMMERCIAL APPLICATIONS OF SMART STRUCTURES TECHNOLOGIES - SMART STRUCTURES AND MATERIALS 1996, 1996, 2721 : 106 - 117
  • [24] Identification of dynamic systems under closed-loop control
    Li, PK
    Kruger, U
    Irwin, GW
    INTERNATIONAL JOURNAL OF SYSTEMS SCIENCE, 2006, 37 (03) : 181 - 195
  • [25] Closed-loop active flow control systems: Actuators
    Seifert, A.
    Active Flow Control, 2007, 95 : 85 - 102
  • [26] Proportional closed-loop feedback control of flow separation
    Pinier, Jeremy T.
    Ausseur, Julie M.
    Glauser, Mark N.
    Higuchi, Hiroshi
    AIAA JOURNAL, 2007, 45 (01) : 181 - 190
  • [27] Closed-loop control of the position of a single vortex relative to an actuated cylinder
    Gomez, Daniel F.
    Paley, Derek A.
    2019 AMERICAN CONTROL CONFERENCE (ACC), 2019, : 3563 - 3568
  • [28] CLOSED-LOOP CONTROL OF SPARK ADVANCE USING A CYLINDER PRESSURE SENSOR
    HUBBARD, M
    DOBSON, PD
    POWELL, JD
    JOURNAL OF DYNAMIC SYSTEMS MEASUREMENT AND CONTROL-TRANSACTIONS OF THE ASME, 1976, 98 (04): : 414 - 420
  • [29] Smart in-cylinder pressure sensor for closed-loop combustion control
    Vollberg, Dennis
    Gibson, Peter
    Schultes, Gunter
    Groh, Hans-Werner
    Heinze, Thomas
    JOURNAL OF SENSORS AND SENSOR SYSTEMS, 2022, 11 (01) : 1 - 13
  • [30] Closed-loop identification with a quantizer
    Wang, M
    Thornhill, NF
    Huang, B
    JOURNAL OF PROCESS CONTROL, 2005, 15 (06) : 729 - 740