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Methodology For Design Of An Active Rigidity Joint

机译:主动刚性接头的设计方法

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Active control of composite structures has primarily focused on vibration control and other small-scale deformations. For use in morphing aircraft structures, a composite "smart joint" is proposed, employing both shape memory alloy and shape memory polymer to replace a conventional rotary actuator. This joint functions as a discrete member capable of both actuation and structural rigidity in user programmable states, with large-scale tip deflections on the order of 10-20% camber. A strain energy model is used to prescribe joint deflection in terms of thermally varying material properties across the thickness of the joint, allowing the designer of a morphing system to select electrical power input and element composition as based on deflection, response speed, and load capacity. This model discretizes the transformation into a multiple step shape change maneuver using the tri-phase process to determine deflection both when heated and when set into its cooled state. Comparison with a finite element model confirms thermodynamics analysis as well as deflection accurate within 2% of analytically predicted behavior.
机译:复合结构的主动控制主要集中在振动控制和其他小规模变形上。为了使飞机结构变形,提出了一种复合的“智能接头”,其同时使用形状记忆合金和形状记忆聚合物来代替传统的旋转致动器。该接头充当离散的构件,在用户可编程状态下既可以致动,又可以具有结构刚度,并且尖端弯曲度约为外倾角的20%到20%。应变能模型用于根据接头厚度上热变化的材料特性来规定接头挠度,从而使变形系统的设计人员可以根据挠度,响应速度和负载能力选择电功率输入和元素组成。该模型使用三相过程离散化为多步形状更改操作的变换,以确定加热时以及设置为冷却状态时的挠度。与有限元模型的比较证实了热力学分析以及在2%的分析预测行为范围内的精确偏转。

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