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Active Control of Flow Over a Three-Element Airfoil in Unbounded Flow and in Ground Effect

机译:在无界流动的三元翼型中的流动控制流动控制和地面效应

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The focus of this paper is on Active Flow Control (AFC) applied to modify the flow field of a three-element airfoil in unbounded flow and in ground effect. MD 30P30N airfoil is used as the three-element airfoil. CFD simulations are performed using ANSYS Fluent. Reynolds-Averaged Navier-Stokes (RANS) equations are solved in conjunction with the Spalart-Allmaras (SA) turbulence model. First, the relationships between the flap deflection angle and the lift coefficient in unbounded flow and ground effect are determined. Then, AFC is employed by injecting a uniform jet (blowing) or a synthetic jet at the leading edge of the flap. After AFC is employed, the lift coefficient is enhanced significantly using both flow control methods compared to the lift coefficient without flow control in the unbounded flow as well as in ground effect. The flap deflection angle for stall increases to 50 degrees for both control strategies employing the uniform blowing or the synthetic jet. In unbounded flow, the lift coefficient is enhanced significantly by AFC with synthetic jet and the flap deflection angle for stall increases to 45 degree; however for AFC with the uniform blowing, the effect on lift enhancement is relatively smaller.
机译:本文的焦点是应用于在无限流动和地面效果中修改三元翼型的流场的主动流量控制(AFC)。 MD 30P30N翼型用作三元翼型。使用ANSYS FLUENT执行CFD仿真。 Reynolds平均的Navier-Stokes(RANS)方程与Spalart-Allmaras(SA)湍流模型一起解决。首先,确定皮瓣偏转角与无界流动和地面效应之间的升力系数之间的关系。然后,采用AFC通过在翼片的前缘注入均匀的射流(吹)或合成射流来使用。在采用AFC之后,与升力系数相比,使用两个流量控制方法显着增强了提升系数,而没有在无限的流动中的流量控制以及地面效果。对于使用均匀吹制或合成射流的控制策略,停顿的翼片偏转角增加到50度。在无限的流动中,通过AFC具有合成射流的升力系数显着增强,并且停顿的襟翼挠度角增加到45度;然而,对于具有均匀吹制的AFC,对提升增强的影响相对较小。

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