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Vibration and elastic wave propagation in spatial flexible damping panel attached to four special springs

机译:空间柔性阻尼板中的振动和弹性波传播,附接到四个特殊弹簧

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Investigation of the characteristics of the vibration and elastic wave propagation in the ultra-large ultra-flexible damping spatial structures is the precondition for the active control of the dynamic response of the spatial structure from the viewpoint of the wave absorption perspective. The difficulties of the analysis on the characteristics of the vibration and elastic wave propagation in the spatial structures result from the following two aspects: one is the coupling effects between the attitude control, the orbit dynamics and the structural vibration exciting the elastic waves; and another is the non-smooth factors including the on-off controllers and the geometric constraints between the components of the structure. Employing the complex structure-preserving approach, the vibration and wave propagation characteristics in the spatial flexible damping panel attached to four special springs are investigated in this paper. Considering the coupling between the structural vibration, the attitude dynamics and the orbit dynamics, a dynamic model is established for the spatial flexible damping panel-spring-mass system. Compared with the dynamic model proposed in previous work, the springs suspending the panel are considered as unilateral non-smooth constraints to describe the zero constraints when some tethers are slack during certain time periods in the tethered satellite system described by the dynamic model presented in this paper. Relying on the local structure-preserving properties of the generalized multi-symplectic method and the excellent long-term numerical behaviour of the symplectic method, the complex structure-preserving method is employed. Some novel vibration and wave propagation characteristics in the spatial flexible damping panel attached to four special springs with different initial attitude angles are revealed, which include the damping characteristics of the elastic wave propagation in the spatial panel and the interaction process of the elastic waves, especially the resonance phenomena between the elastic waves obliquely propagating in the panel. The complex structure-preserving method presented in this paper is proved as an effective approach to deal with the non-smooth coupling dynamic systems and the vibration and wave propagation characteristics revealed can be used to guide the structural design as well as the material selection for the tethered satellite system. (C) 2020 Elsevier B.V. All rights reserved.
机译:超大型超柔性阻尼空间结构中振动和弹性波传播特性的研究是从波吸收的观点的观点来看空间结构动态响应的主动控制的前提。振动特性分析的困难与以下两个方面的空间结构中的振动和弹性波传播的特性:一个是姿态控制,轨道动力学和令人兴奋的弹性波的结构振动之间的耦合效应;另一个是非平滑因素,包括开关控制器和结构的组件之间的几何约束。采用复杂的结构保存方法,本文研究了空间柔性阻尼板中的空间柔性阻尼板中的振动和波传播特性。考虑到结构振动,姿态动态和轨道动力学之间的耦合,为空间柔性阻尼面板 - 弹簧质量系统建立了动态​​模型。与先前的工作中提出的动态模型相比,悬挂面板的弹簧被认为是单侧非平滑约束,以描述当某些时间在由此提出的动态模型所描述的卫星卫星系统中的某些时间段期间松弛时,以描述零限制纸。依赖于局部结构保存性能的广义多辛方法和辛方法的优异长期数值行为,采用复杂的结构保存方法。揭示了附接到四个特殊弹簧的空间柔性阻尼板中的一些新的振动和波传播特性,其包括空间板中弹性波传播的阻尼特性和弹性波的相互作用过程,尤其是在面板中倾斜地繁殖的弹性波之间的共振现象。本文提出的复杂结构保存方法被证明是处理非平滑耦合动态系统的有效方法,并且可以使用振动和波传播特性来指导结构设计以及材料选择系束卫星系统。 (c)2020 Elsevier B.v.保留所有权利。

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