Dynamical Modelling of FORMOSAT-7 NB-Satellite Multibody System

Shui-Lin Weng, Y. Lian
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引用次数: 1

Abstract

Many space vehicles assume their final configuration after an initial deployment phase. During this phase, one part of the vehicle moves with respect to another part as the configuration evolves from its initial to its final form. Presence of a mobile solar array attached to the satellite bus with a controlled hinge leads to significant complication of the satellite dynamics. A mathematical model as well as corresponding software is necessary for numerical investigation of the satellite arbitrary movements. To combine the computational advantages- the non-working constraint forces and torques do not appear, and the resulting equation set is of minimum dimension- comparative studies suggested that some related generalization of Lagrange's form of d'Alembert's principle most closely meet these needs. For FORMOSAT-7 NSPO built satellite, in order to accommodate the field of view requirements originated mainly from the mission payload, a spacecraft bus attached with single leaf of solar array configuration is designed. The asymmetric configuration constitutes a two body dynamics problem, not one whole rigid body case. In this paper, the FORMOSAT-7 NB-satellite attitude dynamics modelling formulation is managed pragmatically. Its final expression of equations of motion derived systematically through the general dynamical equations of motion based on Lagrange's form of d'Alembert's principle and expressed in terms of kinematics variables, velocity and angular velocity coefficients, and generalized forces is presented meticulously. Finally, the equations of motion are validated through cases of numerical simulations.
FORMOSAT-7 NB-Satellite多体系统动力学建模
许多太空飞行器在初始部署阶段之后都是最后的配置。在这个阶段,车辆的一部分相对于另一部分移动,因为配置从最初的形式演变到最终的形式。移动太阳能电池阵以受控铰链连接在卫星总线上,导致卫星动力学的显著复杂性。卫星任意运动的数值研究需要数学模型和相应的软件。结合计算优势——不出现非工作的约束力和力矩,所得方程集是最小维数——比较研究表明,Lagrange形式的达朗贝尔原理的一些相关推广最能满足这些需求。对于FORMOSAT-7 NSPO卫星,为了适应主要由任务载荷引起的视场需求,设计了一种单叶太阳能阵列结构的航天器总线。非对称位形构成一个两体动力学问题,而不是一个完整的刚体情况。本文对FORMOSAT-7 nb卫星姿态动力学建模公式进行了实用管理。通过基于拉格朗日形式的达朗贝尔原理的一般动力学方程,系统地推导出用运动学变量、速度和角速度系数以及广义力表示的运动方程的最终表达式。最后,通过数值模拟实例对运动方程进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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