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Use of Harmonic Decomposition Models in Rotorcraft Flight Control Design with Alleviation of Vibratory Loads

机译:谐波分解模型在减轻振动载荷的旋翼飞行控制设计中的应用

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An Explicit Model Following (EMF) control scheme is designed to achieve stability and desired Rate Command / Attitude Hold (RCAH) response around the roll, pitch and yaw axes, while alleviating vibratory loads through both feed-forward and feedback compensation. First, the effect of command model tailoring is explored to understand the effect of feed-forward compensation on vibratory loads, with a focus on the main rotor pitch links. Secondly, the harmonic decomposition methodology is extended to enable optimization of primary flight control laws that mitigate vibratory loads. Specifically, Linear Time Periodic (LTP) systems representative of the periodic rotorcraft dynamics arc approximated by Linear Time Invariant (LTI) models, which are then reduced and used in LQR design to constrain the harmonics of the vibratory loads. The gains derived are incorporated in the EMF scheme for feedback compensation. Finally, simulation results with and without load alleviation are compared and the impact of feed-forward and feedback compensation on handling qualities is assessed in terms of ADS-33E specifications.
机译:明确的模型跟随(EMF)控制方案旨在实现稳定性和围绕侧倾,俯仰和偏航轴的所需速率命令/姿态保持(RCAH)响应,同时通过前馈和反馈补偿来减轻振动载荷。首先,探索命令模型调整的效果,以了解前馈补偿对振动负载的影响,并重点关注主旋翼桨距连杆。其次,谐波分解方法得到扩展,可以优化减轻振动负荷的主要飞行控制定律。具体而言,代表周期性旋翼飞行器动力学的线性时间周期(LTP)系统通过线性时间不变(LTI)模型进行近似,然后将其减少并用于LQR设计中,以限制振动负载的谐波。得出的增益被合并到EMF方案中以进行反馈补偿。最后,比较了有和没有减轻负载的仿真结果,并根据ADS-33E规格评估了前馈和反馈补偿对操作质量的影响。

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