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Experimental study of the active control applied to the flow past a backward facing ramp

An experimental study of open loop active flow control on a backward facing ramp is presented. The ramp has finite span and a slant angle of 25$$^{\circ }$$∘. Wind tunnel… Click to show full abstract

An experimental study of open loop active flow control on a backward facing ramp is presented. The ramp has finite span and a slant angle of 25$$^{\circ }$$∘. Wind tunnel experiments were performed both for the uncontrolled and the controlled cases where time periodic forcing by pulsed jets is considered. The control system exploits an electro-magnetic valve system to generate pulsed jets with an operating frequency and duty cycle ranging, respectively, between 50 and 250 Hz and between 25 and 60%. A parametric study was carried out for three different freestream velocities and varying the frequency of the pulsed jets and the duty cycle. The control strategy relies on the injection of periodic perturbations before separation at the edge of the slant, considering various combinations of frequencies and duty cycles while keeping constant the blowing time for every Reynolds number, so as to excite the flow with the same jet structure over different actuation cycle extents. The receptivity of the flow to periodic forcing was assessed by characterizing mean and unsteady flow properties, turbulence statistics and flow topology. The study focused on the impact of control on reattachement and showed that the flow locks with excitation frequencies typical of initial Kelvin–Helmholtz instabilities. However, the flow was found to respond to any injected unsteady perturbation locking to the forcing frequencies and the extent of the region where locking occurs was found to be of the order of a few slant heights. A relaxation process was observed and the flow was found to relax past the slant trailing edge toward frequencies close to the natural ones.

Keywords: experimental study; backward facing; control; flow; study; facing ramp

Journal Title: Experiments in Fluids
Year Published: 2018

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