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Topology optimization of a flexible multibody system with variable-length bodies described by ALE–ANCF
Authors:Jialiang Sun  Qiang Tian  Haiyan Hu  Niels L Pedersen
Affiliation:1.State Key Laboratory of Mechanics and Control of Mechanical Structures, College of Aerospace Engineering,Nanjing University of Aeronautics and Astronautics,Nanjing,China;2.MOE Key Laboratory of Dynamics and Control of Flight Vehicle, School of Aerospace Engineering,Beijing Institute of Technology,Beijing,China;3.Department of Mechanical Engineering,Solid Mechanics, Technical University of Denmark,Kongens Lyngby,Denmark
Abstract:Recent years have witnessed the application of topology optimization to flexible multibody systems (FMBS) so as to enhance their dynamic performances. In this study, an explicit topology optimization approach is proposed for an FMBS with variable-length bodies via the moving morphable components (MMC). Using the arbitrary Lagrangian–Eulerian (ALE) formulation, the thin plate elements of the absolute nodal coordinate formulation (ANCF) are used to describe the platelike bodies with variable length. For the thin plate element of ALE–ANCF, the elastic force and additional inertial force, as well as their Jacobians, are analytically deduced. In order to account for the variable design domain, the sets of equivalent static loads are reanalyzed by introducing the actual and virtual design domains so as to transform the topology optimization problem of dynamic response into a static one. Finally, the novel MMC-based topology optimization method is employed to solve the corresponding static topology optimization problem by explicitly evolving the shapes and orientations of a set of structural components. The effect of the minimum feature size on the optimization of an FMBS is studied. Three numerical examples are presented to validate the accuracy of the thin plate element of ALE–ANCF and the efficiency of the proposed topology optimization approach, respectively.
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