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A finite-state aeroelastic model for rotorcraft-pilot coupling analysis

机译:旋翼飞机-飞行员耦合分析的有限状态气动弹性模型

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摘要

Rotorcraft-pilot coupling (RPC) denotes interplay between pilot and helicopter (or tiltrotor) that may give rise to adverse phenomena. These are usually divided into two main classes: pilot-induced oscillations driven by flight dynamics and behavioural processes, and pilot-assisted oscillations (PAO) caused by unintentional actions of pilot on controls, owing to involuntary reaction to seat vibrations. The aim of this paper is the development of mathematical helicopter models suited for analysis of RPC phenomena. In addition to rigid-body dynamics, RPCs (especially PAO) are also related to fuselage structural dynamics and servoelasticity; however, a crucial role is played by main rotor aeroelasticity. In this work, the aeroelastic behaviour of the main rotor is simulated through a novel finite-state modeling that may conveniently be applied for rotorcraft stability and response analyses, as well as for control synthesis applications. Numerical results, first are focused on the validation of the proposed novel main rotor model, and then present applications of the developed comprehensive rotorcraft model for the RPC analysis of a Bo-105-type helicopter. Specifically, these deal with the stability of vertical bouncing, which is a PAO phenomenon caused by coupling of vertical pilot seat acceleration with collective control stick, driven by inadvertent pilot actions. Further, considering quasi-steady, airfoil theory with wake inflow correction and three-dimensional, potential-flow, boundary element method approaches, the sensitivity of PAO simulations to different aerodynamic load models applied within the main rotor aeroelastic operator is also investigated.
机译:旋翼飞机-飞行员耦合(RPC)表示飞行员与直升机(或俯仰旋翼)之间的相互作用,可能引起不良现象。这些通常分为两大类:由飞行动力学和行为过程驱动的飞行员引起的振荡,以及由于对座椅振动的非自愿反应,飞行员对控件的无意动作导致的飞行员辅助振荡(PAO)。本文的目的是开发适用于分析RPC现象的数学直升机模型。除了刚体动力学外,RPC(尤其是PAO)还与机身结构动力学和伺服弹性有关。然而,主旋翼气动弹性起着至关重要的作用。在这项工作中,通过新颖的有限状态模型模拟了主旋翼的气动弹性行为,该模型可以方便地应用于旋翼飞机的稳定性和响应分析以及控制综合应用。数值结果首先集中在对提出的新型主旋翼模型的验证上,然后介绍了开发的综合旋翼飞机模型在Bo-105型直升机的RPC分析中的应用。具体来说,这些处理垂直跳动的稳定性,这是由于飞行员无意中导致的垂直飞行员座椅加速度与集体控制杆耦合而引起的PAO现象。此外,考虑到具有尾流校正的准稳态翼型理论和三维势流边界元方法,还研究了PAO模拟对在主旋翼气动弹性算子中应用的不同气动载荷模型的敏感性。

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