Aeroelastic Load Control Through the Use of a Mechanically Driven Flap

Xing Wei, Xiaowei Zhao, Bing Feng Ng
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Abstract

Aeroelastic control through the use of flap actuated through novel mechanical network is demonstrated in this study. The aeroelastic model couples a composite beam description of the structural dynamics to the unsteady vortex-lattice method for the aerodynamics. Flap dynamics are introduced to the model for flap rotation to be controlled by the total torque (aerodynamic torque and control torque) applied on its hinge. In this study, a passive mechanical controller is proposed to sense the relative angular velocity of the flap to generate the control torque. The mechanical controller can be realized by passive components including springs, dampers and inerters. The parameters of the mechanical controller are optimized by $H$∞ and $H_{2}$ routines for robustness and efficacy on load reduction, respectively. It is shown that both mechanical controllers exhibit marked reductions in bending moment and tip deflection in the presence of external disturbances.
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利用机械驱动襟翼控制气动弹性载荷
本研究演示了利用新型机械网络驱动的襟翼进行气动弹性控制。气动弹性模型将结构动力学的复合梁描述与空气动力学的非定常涡点阵方法相结合。该模型将襟翼动力学引入到襟翼铰链上的总扭矩(气动扭矩和控制扭矩)来控制襟翼的旋转。在本研究中,提出一种被动机械控制器来感知襟翼的相对角速度以产生控制转矩。机械控制器可以通过弹簧、阻尼器和惯性器等被动元件来实现。分别采用$H$∞和$H_{2}$例程优化机械控制器的鲁棒性和减载效率。结果表明,在存在外部干扰的情况下,两种机械控制器的弯矩和尖端挠度都有明显的减小。
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