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Numerical Simulations Exploring Dielectric Barrier Discharge-Induced Steady and Pulsed Suction

机译:介质阻挡放电引起的稳态和脉冲吸力的数值模拟

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This exploratory numerical study investigates the use of dielectric barrier discharge (DBD) plasma actuators to drive flow in a channel and in various slots for potential active flow control (AFC) applications. The approach of mounting the DBD actuators inside of channels and slots to generate flow is explored as an option to the traditional approach of mounting the actuators directly to the surface exposed to the free stream. The numerical simulations employ a well-validated high-fidelity Navier-Stokes flow solver augmented with a phenomenological model that represents the plasma-induced time-average body force imparted by each actuator on the fluid. Parametric studies are performed for three two-dimensional shapes: a channel in quiescent flow, flow over a flat plate with a suction slot, and a flat plate with a c-shaped slot that removes and injects fluid into the flow. Three-dimensional computations were also performed for these cases. For the case of channel flow the effects of Reynolds number, magnitude and height of the body force, and addition of multiple actuators were explored. In all cases wall jets develop near the actuators at the top and bottom of the channel that lift from the walls downstream of the actuators and merge to form a parabolic profiles. For the flat plate with steady suction slot, the magnitude of the body force required to effectively remove slow momentum flow from the flat-plate boundary layer was determined. If the actuator strength is not large enough, the slot was unable to develop suction and instead increased the injected mass into the flow. The c-slot case demonstrated the ability to trip the boundary layer downstream of the slot using both steady and pulsed actuators.
机译:这项探索性的数值研究研究了电介质阻挡层放电(DBD)等离子体致动器在驱动通道和各种插槽中的流动以实现潜在的主动流量控制(AFC)应用中的作用。作为将驱动器直接安装到暴露于自由流的表面的传统方法的一种选择,探索了将DBD驱动器安装在通道和槽内以产生流量的方法。数值模拟使用经过验证的高保真Navier-Stokes流动求解器,并增加了现象学模型,该模型表示了每个执行器施加在流体上的等离子诱导的时间平均体力。对三个二维形状进行了参数研究:静态流动的通道,在带有吸入槽的平板上流动以及在c形槽上的平板,用于将流体除去并注入到流体中。对于这些情况还进行了三维计算。对于通道流动的情况,研究了雷诺数,体力的大小和高度以及添加多个执行器的影响。在所有情况下,壁射流都在通道顶部和底部的促动器附近形成,它们从促动器的下游壁升起并融合形成抛物线轮廓。对于具有固定吸入槽的平板,确定了从平板边界层有效去除缓慢的动量流所需的主体力的大小。如果执行器的强度不够大,则槽无法产生吸力,而是增加了注入流中的质量。 C槽的情况表明,使用稳定和脉冲致动器可以使边界层在槽的下游跳闸。

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