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Stiffness Modeling and Analysis of Multiple Configuration Units for Parabolic Deployable Antenna

  • Jing Zhang
  • , Miao Yu
  • , Chuang Shi*
  • , Qiying Li
  • , Ruipeng Li
  • , Hongwei Guo
  • , Rongqiang Liu
  • *Corresponding author for this work
  • Yanshan University
  • Hebei Innovation Center for Equipment Lightweight Design and Manufacturing
  • School of Mechatronics Engineering, Harbin Institute of Technology
  • Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

Space-deployable antennas have development requirements of an ultra-large aperture, high stiffness, and multi-frequency multiplexing. To address the challenge of stiffness characterization in the multi-closed-loop complex systems of deployable mechanisms, this paper proposes a parametric stiffness modeling method and a static stiffness model is established, ranging from components and limbs to the overall mechanism. The motion/force mapping model of the deployable mechanism is obtained using screw theory, and the stiffness mapping from joint space to workspace is achieved via the Jacobian matrix. A comprehensive stiffness model of the deployable mechanism incorporating joint effects is established based on the principle of virtual work and the superposition principle of deformations, and its validity is verified through finite element simulation. Building on this, stiffness characteristics based on structural configuration are investigated, and structural forms with excellent stiffness performance are selected through comprehensive evaluation. Six configurations of the deployable mechanism are derived topologically from this structure, and the optimal configuration is selected based on stiffness performance. The parametric stiffness modeling method proposed in this study can effectively characterize the contribution of each component to the overall system stiffness. It lays a theoretical foundation for establishing a quantitative relationship between stiffness performance and configuration, enabling performance-based configuration optimization and dimensional optimization.

Original languageEnglish
Article number27
JournalApplied Mechanics
Volume7
Issue number2
DOIs
StatePublished - Jun 2026

Keywords

  • configuration
  • deployable mechanism
  • multiple closed-loop mechanisms
  • screw theory
  • static stiffness modeling

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