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Dynamic Flight Simulation of Spanwise Distributed Electric Propulsion for Directional Control Authority

机译:用于定向控制权的翼展分布电动推进动态飞行模拟

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A linear time-invariant state-space model was developed to simulate the six-degree-of-freedom aircraft dynamics of the Aircraft for Distributed Electric Propulsion Throttle-based Flight Control (ADEPT-FC), a 34 lb remote controlled aircraft featuring eight overwing electric ducted fans (EDFs) distributed spanwise along the wing's trailing edge. This model utilized parasite drag estimates from OpenVSP's parasite drag tool, trimmed stability coefficients from VSPAERO's stability coefficient solver, and mass properties measured from the as-built aircraft to populate the traditional vehicle dynamics portion of the model's state-space matrices. A second-order state-space frequency model of propulsor dynamics was developed and tuned to the frequency response of the Schübeler EDF as measured in wind-tunnel testing. The influence of propulsor thrust on the vehicle's dynamics was derived and superimposed into the vehicle dynamics state-space model, bridging the gap between a conventional vehicle's state-space model and the propulsor dynamics frequency models for each propulsor. This updated vehicle dynamics model can be provided both aircraft control surface deflections and propulsor thrust inputs to simulate the dynamic response of the vehicle. Without consideration of anticipated propulsion airframe integration (PAI) cross-coupling effects, the simulator developed herein suggested that asymmetric throttle mixing of the EDFs should provide a similar response to that of a rudder deflection. It is anticipated that addition of the PAI effects will magnify the roll rate associated with the maneuver, caused by thrust-induced lift over the outside wing. Further development of this technology could enable a reduction or elimination of the aircraft's vertical tail.
机译:开发了线性时间不变状态空间模型,以模拟飞机的六维自由度飞行器动力学,用于分布式电动推进器的飞行控制(Adept-Fc),一个34 LB遥控飞机,八个过度沿着机翼的后缘沿着翼形的后缘分布的电动风扇(EDF)。该模型利用来自OpenVSP的寄生虫拖曳工具的寄生虫拖曳估计,从VSPAERO的稳定系数求解器修剪稳定性系数,以及从竣工飞机测量的质量属性来填充模型的状态空间矩阵的传统车辆动态部分。在风隧道测试中测量的,开发了推进动力学的二阶状态空间模型和调谐到SchübelerEDF的频率响应。推动推动器推力对车辆动力学的影响被推导和叠加到车辆动态状态空间模型中,桥接传统车辆的状态空间模型与每个推进器的推进动力学频率​​模型之间的间隙。该更新的车辆动力学模型可以提供飞机控制表面偏转和推进器推力输入,以模拟车辆的动态响应。不考虑预期推进机空气框架集成(PAI)交叉耦合效果,本文开发的模拟器表明EDF的不对称节流混合应该提供对舵偏转的相似响应。预计将添加PAI效果将使由外部翼的推力引起的升力引起的机动相关的辊速。该技术的进一步发展可以降低或消除飞机的垂直尾部。

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