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Hybrid Passive/Active Vibration Control of a Loosely Connected Spacecraft System

机译:混合无源/主动振动控制松散连接的航天器系统

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In this paper, a hybrid passive/active vibration (HPAV) controller of a loosely connected spacecraft consisting of a servicing satellite, a target and an X-shape structure isolator is first proposed to suppress vibrations of the system when subjected to the impulsive external excitations during the on-orbit missions. The passive dynamic response of the combined system can be adjusted appropriately to achieve the desired vibration isolation performance by tuning the structural parameters of the bio-inspired X-shape structure. Moreover, the adaptive control design through dynamic scaling technique is selected as the active component to maintain high vibration isolation performance in the presence of parameter uncertainties such as mass of the satellite platform, the damping and rotation friction coefficients of the X-shape structure. Compared with the pure passive system and the traditional spring-mass-damper (SMD) isolator, the HPAV strategy witnesses lower transmissibility, smaller vibration amplitude and higher convergence rate when subjected to the post-capture impact. Numerical simulations demonstrate the feasibility and validity of the proposed hybrid control scheme in suppressing vibrations of the free-floating spacecraft.
机译:在本文中,首先提出由维修卫星,目标和X形结构隔离器组成的松散连接的航天器的混合动力/主动振动(HPAV)控制器,以抑制脉冲外部激励时系统的振动在轨道任务期间。可以通过调整生物启发X形结构的结构参数来适当地调整组合系统的被动动态响应以实现所需的振动隔离性能。此外,选择通过动态缩放技术的自适应控制设计作为有源组件,以在存在参数不确定性的情况下保持高振动隔离性能,例如卫星平台的质量,阻尼和旋转摩擦系数的X形结构的存在。与纯无源系统和传统的弹簧 - 质量阻尼器(SMD)隔离器相比,HPAV策略目睹了较低的传播性,较小的振动幅度和较高的收敛速度,当捕获后冲击时。数值模拟证明了提出的混合控制方案在抑制自由浮动航天器的振动方面提出的混合控制方案的可行性和有效性。

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