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Study on analytical global modes for a multi-panel structure connected with flexible hinges

机译:柔性铰链连接多面板结构的分析全球模式研究

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摘要

A dynamic modeling method for a multi-panel structure connected with flexible hinges is proposed in this paper. For the solar array composed of several flexible rectangular panels, the global explicit modal functions of spatial coordinates are obtained by employing the Rayleigh-Ritz method, which are in favor of deriving the lower-dimension discrete dynamic equations and the design of controllers for the system in the further research. The Gram-Schmidt characteristic orthogonal polynomials are adopted to construct the flexible deformation expressions of the solar panel. The Lagrange multipliers are introduced to describe the constraint at flexible hinges. The eigen equation of the multi-panel structure is derived to obtain the natural frequencies and corresponding global modes of the system through the Rayleigh-Ritz procedure. Considering the natural frequency calculated from the finite element method as a reference value, the correctness of the modeling process is validated by comparing results with those obtained from the finite element method. Moreover, a high accuracy of the proposed method are confirmed by a very good agreement between results from ANSYS and the theoretical method proposed here. The proposed method derives analytical global modes of the whole system which can be conveniently used to design the controller and work out the nonlinear dynamic model and with a few degree-of-freedoms directly. Finally, the interesting mode interchanged phenomenon is observed with the variation of the stiffness of the rotation spring at flexible hinges.
机译:本文提出了一种与柔性铰链连接的多面板结构的动态建模方法。对于由多个柔性矩形面板组成的太阳能阵列,通过采用瑞利-RITZ方法获得空间坐标的全局显式模态功能,这有利于导出下尺寸离散动态方程和系统控制器的设计在进一步的研究中。采用克施密特特征正交多项式构建太阳能电池板的柔性变形表达式。引入拉格朗日乘法器来描述灵活铰链的约束。导出多面板结构的特征方程,以通过瑞利-RITZ程序获得系统的自然频率和相应的全局模式。考虑到从有限元方法计算的自然频率作为参考值,通过将结果与从有限元方法获得的结果进行比较来验证建模过程的正确性。此外,所提出的方法的高精度是通过在ANSYS的结果和本文所提出的理论方法之间的非常好的协议来确认。该方法推出了整个系统的分析全球模式,可以方便地用于设计控制器并直接制定非线性动态模型并直接自由度。最后,利用柔性铰链处的旋转弹簧的刚度变化来观察到有趣的模式互换现象。

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