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Hybrid active suspension system of a helicopter main gearbox

机译:Helicopter主齿轮箱的混合动力活动悬架系统

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This paper considers experiments on the control of a helicopter gearbox hybrid electromagnetic suspension. As the new generation of helicopters includes variable engine revolutions per minute (RPMs) during flight, it becomes relevant to add active control to their suspension systems. Most active system performance derives directly from the controller construction, its optimization to the system controlled, and the disturbances expected. An investigation on a feedback and feedforward filtered-x least mean square (FXLMS) control applied to an active DAVI suspension has been made to optimize it in terms of narrow-band disturbance rejection. In this paper, we demonstrate the efficiency of a new hybrid active suspension by combining the advantages of two different approaches in vibration control: resonant absorbers and active suspensions. Here, a hybrid active suspension based on the passive vibration filter called DAVI is developed. The objective of this paper is to prove the relevancy of coupling a resonant vibration absorber with a control actuator in order to create an active suspension with larger bandwidth efficiency and low energy consumption. The simulations and experimentation achieved during this suspension system development support this hypothesis and illustrate the efficiency and low energy cost of this smart combination.
机译:本文考虑了控制直升机齿轮箱混合电磁悬浮液的实验。由于新一代直升机包括飞行期间每分钟(RPMS)的可变发动机转速,因此与向其悬架系统添加主动控制时,它变得相关。大多数有源系统性能直接从控制器结构导出,它对系统控制的优化以及预期的干扰。已经进行了对应用于有源DAVI悬架的反馈和馈电过滤器-X最小均线(FXLMS)控制的研究以在窄带扰动抑制方面优化它。在本文中,我们通过组合振动控制中两种不同方法的优点来证明新的混合活性悬浮液的效率:谐振吸收器和活性悬浮液。这里,开发了基于称为DAVI的被动振动滤波的混合有源悬架。本文的目的是证明与控制致动器耦合谐振振动吸收器的相关性,以便产生具有较大带宽效率和低能量消耗的主动悬架。在该悬架系统开发期间实现的模拟和实验支持了这一假设,并说明了这种智能组合的效率和低能量成本。

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