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Distributed Electromechanical Actuation System Design for a Morphing Trailing Edge Wing

机译:变形后缘翼的分布式机电致动系统设计

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Next-generation flight control actuation technology will be based on "more electric" concepts to ensure benefits in terms of efficiency, weight and maintenance. This paper is concerned with the design of an un-shafted distributed servo-electromechanical actuation system, suited for morphing trailing edge wings of large commercial aircraft. It aims at producing small wing camber variations in the range between -5° and +5° in cruise, to enable aerodynamic efficiency improvements. The deployment kinematics is based on multiple "direct-drive" actuation, each made of light-weight compact lever mechanisms, rigidly connected to compliant ribs and sustained by load-bearing motors. Navier-Stokes computations are performed to estimate the pressure distribution over the interested wing region and the resulting hinge moments. These transfer to the primary structure via the driving mechanism. An electro-mechanical Matlab/Simulink model of the distributed actuation architecture is developed and used as a design tool, to preliminary evaluate the complete system performance. Implementing a multi-shaft strategy, each actuator is sized for the torque acting on the respective adaptive rib, following the effect of both the aerodynamic pressure and the morphing skin stiffness. Elastic trailing edge rotations and power needs are evaluated in operative conditions. Focus is finally given to the key challenges of the proposed concept: targeting quantifiable performance improvements while being compliant to the demanding requirements in terms of reliability and safety.
机译:下一代飞行控制致动技术将基于“更多电”的概念,以确保在效率,重量和维护方面的收益。本文涉及一种无轴分布式伺服机电致动系统的设计,该系统适用于使大型民用飞机的后缘机翼变形。它的目的是在巡航中产生-5°至+ 5°范围内的较小机翼外倾角变化,以提高空气动力学效率。展开运动学基于多个“直接驱动”致动,每个致动都由轻巧的杠杆机构制成,刚性连接至顺应肋,并由承重电机支撑。进行Navier-Stokes计算以估计感兴趣的机翼区域上的压力分布以及由此产生的铰链力矩。这些经由驱动机构传递到初级结构。开发了分布式致动架构的机电Matlab / Simulink模型,并将其用作设计工具,以初步评估整个系统的性能。实施多轴策略后,每个执行器的大小都应根据气动压力和变形的皮肤刚度的影响来确定作用在相应自适应肋上的扭矩。在操作条件下评估弹性后缘旋转和动力需求。最后将重点放在所提出概念的关键挑战上:以可量化的性能改进为目标,同时在可靠性和安全性方面符合苛刻的要求。

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