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DC-Augmented Dielectric Barrier Discharge (DCA-DBD)
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Time-dependent multiphysics interactions that drive the energy transfer in electromechanical systems are poorly understood. We probe dielectric barrier discharge (DBD) with an external DC-augmented (DCA) field to reveal new mechanistic insights. The biased HV DC electrode influences the interaction between the charged ions and the E-field, surface and space charge, and neutral molecules. Direct force measurement, velocity profiles, and time-resolved electrical and optical measurements of discharge characteristics provide evidence of complex plasma/flow interactions. Negative DCA leads to modest improvements in momentum transfer due to the field-augmented ion acceleration before the system transitions to sliding discharge and a counter jet at the DCA electrode, canceling the gains from positive ion acceleration. Positive DCA monotonically increases the wall-parallel force. A new oscillating residual charge interaction mechanism is identified to explain a greater than 2-fold increase in horizontal thrust, in which the acceleration of positive ions is augmented by the attraction from the residual (negative) charge.
Forward citations
Cited by 2 Pith papers
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AC-Augmented Dielectric Barrier Discharge
An AC-biased third electrode with out-of-phase driving increases DBD actuator thrust by up to ~40% (max 54 mN/m) and produces sliding discharge at high field strengths.
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Multi-Electrode Dielectric Barrier Discharge Actuators: Geometrical Optimization of High Power Density Array
A four-stage alternating-phase DBD array with resistor-segmented electrodes reached 251 mN/m thrust and delayed sliding discharge to higher voltages.
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