Title :
Feedback control for reducing the pressure drag of bluff bodies terminated by a backward-facing step
Author :
Morgans, Aimee S. ; Dahan, Jeremy A. ; Flinois, Thibault
Author_Institution :
Dept. of Aeronaut., Imperial Coll. London, London, UK
Abstract :
Four flows over a backward-facing step are considered. These exhibit a range of flow physics, and are of relevance to the flow over the rear of “squareback” road vehicles. Computational flow simulations are used as a test-bed to devise a linear feedback control strategy which achieves a mean base pressure recovery (equivalent to reducing pressure drag) for all four flows. The strategy is based on the premise that reducing pressure drag fluctuations improves mean pressure recovery. Thus the feedback control objective is to attenuate base pressure force fluctuations. The response of each of the flows to actuation is characterised via harmonic forcing system identification. Feedback control is found to successfully achieve a mean pressure recovery for all four of the flows, and is particularly effective for 2-D geometries (with either laminar or turbulent separation). The approach uses only body-mounted sensing and actuation and could be applied experimentally.
Keywords :
actuators; computational fluid dynamics; drag reduction; feedback; flow control; flow simulation; road vehicles; 2D geometry; BFS; backward facing step; base pressure force fluctuation attenuation; bluff bodies; body mounted actuation; body mounted sensing; computational flow simulation; feedback control; harmonic forcing system identification; linear feedback control strategy; mean base pressure recovery; pressure drag fluctuation reduction; squareback road vehicles; Drag; Feedback control; Force; Frequency control; Gain; Road vehicles; Sensors;
Conference_Titel :
Control (CONTROL), 2014 UKACC International Conference on
Conference_Location :
Loughborough
DOI :
10.1109/CONTROL.2014.6915143