Title :
Modeling and Distributed Control of Transition in Plane Poiseuille Flow
Author :
Chughtai, Saulat S. ; Werner, Herbert
Author_Institution :
Inst. of Control Syst., Hamburg Univ. of Technol., Hamburg, Germany
fDate :
5/1/2012 12:00:00 AM
Abstract :
Recently a mathematical model for flow transition control in 2-D channels has been proposed that is in interconnected systems representation. The model is valid for all spatial frequencies and can be used for the synthesis of controllers for flow transition control problems in channels of infinite length. In this brief the model is validated against known features of plane Poiseuille flow and against the response of a nonlinear simulation at Reynolds number 2000. Based on this model a distributed control scheme is then synthesized for Reynolds number 10 000 using a recently proposed approach for interconnected systems. The controller is designed to stabilize the otherwise spatially unstable flow. This instability causes the transition from laminar to turbulence. Furthermore, a desired closed loop frequency response is obtained by tuning the weighting filters. The designed controller is then tested in a nonlinear simulation and closed-loop results are presented. The approach proposed here does not make any assumption on the periodicity of the channel, as is the case in most of previously published work. The control scheme can be implemented on microelectro-mechanical systems (MEMS)-based control systems. Such systems are spatially discrete in nature which is taken into consideration in the controller synthesis phase.
Keywords :
Poiseuille flow; control system synthesis; controllers; flow control; flow instability; flow simulation; laminar flow; laminar to turbulent transitions; microchannel flow; turbulence; 2D channel flow; Reynolds number; closed loop frequency response; controller synthesis; distributed transition control; flow transition control; interconnected systems representation; laminar-to-turbulence transition; mathematical model; microelectromechanical system-based control system; nonlinear simulation; plane Poiseuille flow; spatial frequency; spatially unstable flow; weighting filters; Chebyshev approximation; Equations; Frequency domain analysis; Mathematical model; Sensors; Shape; Transient analysis; Distributed control; fluid flow control; interconnected systems;
Journal_Title :
Control Systems Technology, IEEE Transactions on
DOI :
10.1109/TCST.2011.2140399