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Parameter analysis of PAF for whole-spacecraft vibration isolation

机译:用于全航天器隔振的PAF参数分析

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Whole-spacecraft vibration isolation, which is implemented by modification of the existing PAF (payload attach fitting), is a direct and effective approach toward improving the dynamic environment that a spacecraft experiences during its journey to the orbit. In this paper, based on Craig-Bampton component modal synthesis and theory about modal effective mass, both the condensed model and the simplified model of the whole-spacecraft vibration isolation system are obtained. By these models, effects of the PAF's parameters, i.e. stiffness and damping, on the transmissibility from the bottom of the PAF to the bottom of the spacecraft and acceleration response of the bottom of the spacecraft are analyzed. Results show that merely increasing the damping of the PAF can effectively attenuate the peak transmissibility, decreasing the stiffness of the PAF can further improve the vibration isolation performance, and can avoid resonance with the launch vehicle by adding enough damping in the PAF. Furthermore, the natural frequency of first lateral or longitudinal mode and their peak transmissibility of the spacecraft-PAF structure can only be estimated by the modal effective mass and the residual mass rather than the rigid body mass of the spacecraft.
机译:通过修改现有的PAF(有效载荷固定装置)来实现整个航天器的振动隔离,是一种直接有效的方法,可以改善航天器在进入轨道过程中所经历的动态环境。本文基于Craig-Bampton分量模态综合和模态有效质量理论,获得了整个航天器隔振系统的压缩模型和简化模型。通过这些模型,分析了PAF参数(即刚度和阻尼)对从PAF底部到航天器底部的透射率以及航天器底部的加速度响应的影响。结果表明,仅增加PAF的阻尼可以有效地削弱峰值透射率,降低PAF的刚度可以进一步提高隔振性能,并通过在PAF中添加足够的阻尼来避免与运载火箭发生共振。此外,航天器-PAF结构的第一横向或纵向模式的固有频率及其峰值透射率只能通过模式有效质量和剩余质量来估算,而不是通过航天器的刚体质量来估算。

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