Here's a couple I found quickly:
"Active Control of Cylinder Wake", Chen and Aubry, Communications in Nonlinear Science, 10(2005)
The objective of this paper is to develop an efficient active control algorithm for manipulating wake flows
past a solid cylinder in an electrically low-conducting fluid (e.g. seawater). The intent is to avoid both vortex
shedding and flow separation from the body. It is expected to reduce the mean drag significantly. This is
achieved through the introduction of a Lorentz force in the azimuthal direction generated by an array of
permanent magnets and electrodes located on the solid structure. With the use of a symmetric and static
Lorentz force over the entire surface of the cylinder, the vortex shedding behind the cylinder weakens and
eventually disappears completely when the Lorentz force is sufficiently large.
"FEEDBACK CONTROL OF VORTEX SHEDDING FROM A CIRCULAR CYLINDER BY ROTATIONAL OSCILLATIONS", Fujisawa, Kawaji, Ikemoto, Journal of Fluids and Structures (2001),15
The present paper describes a new active method for controlling vortex shedding from
a circular cylinder in a uniform #ow at medium Reynolds numbers. It uses rotary cylinder
oscillations controlled by the feedback signal of a reference velocity in the cylinder wake. The
e!ectiveness of this feedback control is evaluated by measuring the response of mean and
#uctuating velocities in the cylinder wake, the spanwise correlation, the power spectrum, and
the #uid forces acting on the cylinder. It is found that the velocity #uctuations and the
#uid forces are both reduced by the feedback control with optimum values of the phase lag and
feedback gain. The simultaneous #ow visualization synchronized with the cylinder oscillation
indicates the attenuation as well as the mechanisms of vortex shedding under the feedback
control, which is due to the dynamic e!ect of cylinder oscillation on the vortex formation