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Dynamics of a Deployable Mesh Reflector of Satellite Antenna: Parallel Computation and Deployment Simulation

机译:卫星天线可展开网格反射器的动力学:并行计算和展开仿真

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摘要

The finite-element approach of absolute nodal coordinate formulation (ANCF) is a possible way to simulate the deployment dynamics of a large-scale mesh reflector of satellite antenna. However, the large number of finite elements of ANCF significantly increases the dimension of the dynamic equations for the deployable mesh reflector and leads to a great challenge for the efficient dynamic simulation. A new parallel computation methodology is proposed to solve the differential algebraic equations for the mesh reflector multibody system. The mesh reflector system is first decomposed into several independent subsystems by cutting its joints or finite-element grids. Then, the Schur complement method is used to eliminate the internal generalized coordinates of each subsystem and the Lagrange multipliers for joint constraint equations associated with the internal variables. With an increase of the number of subsystems, the dimension of simultaneous linear equations generated in the numerical solution process will inevitably increase. By using the multilevel decomposition approach, the dimension of the simultaneous linear equations is further reduced. Two numerical examples are used to validate the efficiency and accuracy of the proposed parallel computation methodology. Finally, the dynamic simulation for a 500 s deployment process of a complex AstroMesh reflector with over 190,000 generalized coordinates is efficiently completed within 78 hrs.
机译:绝对节点坐标公式化(ANCF)的有限元方法是模拟卫星天线大型网状反射器展开动力学的一种可能方法。然而,ANCF的大量有限元极大地增加了可展开式网格反射器的动力学方程的维数,并为有效的动力学仿真带来了巨大挑战。提出了一种新的并行计算方法来求解网格反射器多体系统的微分代数方程。网格反射器系统首先通过切割其接头或有限元网格分解为几个独立的子系统。然后,使用Schur补码方法消除每个子系统的内部广义坐标以及与内部变量关联的联合约束方程的拉格朗日乘数。随着子系统数量的增加,在数值求解过程中生成的联立线性方程的大小将不可避免地增加。通过使用多级分解方法,联立线性方程的维数进一步减小。使用两个数值示例来验证所提出的并行计算方法的效率和准确性。最后,在78小时内有效完成了复杂的AstroMesh反射器具有190,000多个广义坐标的500 s展开过程的动态仿真。

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