Publication | Closed Access
Synthetic jets based on micro magneto mechanical systems for aerodynamic flow control
22
Citations
8
References
2010
Year
Flow ControlEngineeringMagnet-membrane Mechanical ResonatorFluid MechanicsMechanical EngineeringMicroactuatorMicro-electromechanical SystemUnsteady FlowMicromachinesAerodynamic Flow ControlMechanical DesignActive Flow ControlAxisymmetric Synthetic MicrojetAerospace Propulsion SystemsAerospace EngineeringMicrofabricationMechanical SystemsAeroelasticityAerodynamicsSynthetic Jets
A magneto-mechanical micro-actuator providing an axisymmetric synthetic microjet for active flow control was designed, fabricated and characterized. The micro-actuator consists of an enclosed cavity with a small orifice in one face and a high flexible elastomeric (PDMS) membrane in the opposite one. The membrane vibration is achieved using a magnetic actuation chosen for its capacity for providing large out of plane displacements and forces necessary for the performances aimed for. The paper presents first numerical simulations of the flow performed during the design process in order to identify a general jet formation criterion and optimize the device's performances. The fabrication process of this micro-magneto-mechanical system (MMMS) is then briefly described. The full size of the device, including packaging and actuation, does not exceed 1 cm3. The evaluation of the performances of the synthetic jet with 600 µm orifice was performed. The results show that the optimum working point is in the frequency range 400–700 Hz which is in accordance with the frequency response of the magnet-membrane mechanical resonator. In this frequency range, the microjet reaches maximum speeds ranging from 25 m s−1 to 55 m s−1 for an electromagnetic power consumption of 500 mW. Finally the axial velocity transient and stream-wise behaviours in the near and far fields are reported and discussed.
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