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首页> 外文期刊>CEAS Aeronautical Journal >In-flight tracking and vibration control using the DLR's multiple Swashplate system Implementation and test results
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In-flight tracking and vibration control using the DLR's multiple Swashplate system Implementation and test results

机译:使用DLR的多个旋转斜盘系统进行飞行中的跟踪和振动控制实施和测试结果

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This paper discusses the design, integration, and test of a higher harmonic control algorithm capable of both vibration control and in-flight blade tracking in conjunction with DLR's multiple swashplate control system (META), while honoring predefined limits in usable control authority. The design of the control algorithm is described in detail and the results of coupled numerical investigations with both a general purpose multibody code by Politecnico di Milano and DLR's comprehensive rotor code to determine the algorithm's performance are presented. The integration of the control algorithm into the real-time control software is shown for the META system, where, for safety reasons, a semi-open loop approach was implemented. First tests of the controllers in-flight tracking mode to reduce 1/rev loads during hover yielded an almost complete reduction in 1/rev vibratory loads while maintaining constant rotor thrust. Following the experiments at DLR's own facility, extensive wind-tunnel tests were performed in 2016 with META and a 5-bladed rotor system at the large low-speed facility of the German Dutch Wind Tunnels. The control algorithm was adapted to the 5-bladed rotor and successfully applied for in-flight blade tracking as well as the reduction of 5/rev hub loads using multi-harmonic pitch inputs with frequencies from 4/rev to 6/rev in cruise and high-speed flight condition. In both cases, the controller showed excellent performance and yielded satisfactory reductions of 1/rev rotor imbalances as well as a reduction of 5/rev hub vibrations by more than 80%, while, at the same time, adhering to user set limits for the higher harmonic control amplitudes.
机译:本文讨论了能够同时进行振动控制和飞行中叶片跟踪的高次谐波控制算法的设计,集成和测试,并结合了DLR的多斜盘控制系统(META),同时遵守了可用控制权限中的预定义限制。详细描述了控制算法的设计,并给出了用Politecnico di Milano的通用多体代码和DLR的综合转子代码进行耦合数值研究的结果,以确定该算法的性能。对于META系统,显示了将控制算法集成到实时控制软件中,出于安全原因,在该系统中实施了半开环方法。为了在悬停期间减少1 / rev负载而对控制器进行的飞行跟踪模式的首次测试,在保持恒定转子推力的同时,几乎完全减少了1 / rev振动负载。在DLR自己的工厂进行了实验之后,2016年在德国荷兰风洞的大型低速工厂对META和5叶片转子系统进行了广泛的风洞测试。该控制算法适用于5叶片转子,并成功地用于飞行中的叶片跟踪,并使用了频率从4 / rev到6 / rev的多谐波俯仰输入降低了5 / rev轮毂负载。高速飞行条件。在这两种情况下,该控制器均具有出色的性能,并令人满意地减少了1 / rev转子不平衡,并减少了80%的5 / rev轮毂振动,同时还遵守了用户设定的极限值。更高的谐波控制幅度。

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