Artículos de revistas
Piezoceramic Composite Actuators for Flow Control in Low Reynolds Number Airflow
Fecha
2010Registro en:
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES, v.21, n.12, p.1201-1212, 2010
1045-389X
10.1177/1045389X10381656
Autor
BILGEN, Onur
MARQUI JUNIOR, Carlos de
KOCHERSBERGER, Kevin B.
INMAN, Daniel J.
Institución
Resumen
The research presented here employs solid-state actuators for flow separation delay or for forced attachment of separated flow seen in airfoils at low Reynolds numbers. To reduce separation, periodic excitation to the flow around the leading edge of the airfoil is induced by Macro-Fiber Composite actuated clamped-free unimorph benders. An electromechanical model of the unimorph is briefly presented and parametric study is conducted to aid the design of a unimorph to output high deformation at a desired frequency. The optimum frequency and amplitude for lift improvement at post-stall angles are identified experimentally. Along with aerodynamic force and structural displacement measurements, helium bubble flow visualization is used to verify existing separated flow, and the attached flow induced by flow control. The lift enhancement induced by several flow control techniques is compared. A symmetric and non-uniform (3D) flow excitation results in the maximum lift enhancement at post-stall region at the lowest power consumption level. A maximum lift coefficient increase of 27.5% (in the post-stall region) is achieved at 125 Hz periodic excitation, with the 3D symmetric actuation mode at 5 m/s and the reduced frequency of 3.78. C(l,max) is increased 7.6% from the baseline.