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Uncoiling deployment of thin-shell composite booms with piezoelectric actuation

Author(s): ORCID
ORCID
Medium: journal article
Language(s): English
Published in: Smart Materials and Structures, , n. 2, v. 34
Page(s): 025040
DOI: 10.1088/1361-665x/ada650
Abstract:

The efficacy of using piezoelectric actuators to initiate the dynamic deployment of bistable composite tape springs is evaluated in this paper. Ultra-thin composite booms such as tape springs and their cross-sectional variants have seen increased popularity in spacecraft structures due to enabling the precise deployment of flexible solar arrays, sails, reflectors, and antennas. They can elastically transition between the deployed ‘extended’ position and the stowed ‘coiled’ position while retaining superior stiffness, thermal properties, mass efficiency, and compactness when compared to thin-shelled metal booms and rigid articulated columns. Bistability in the coiled and extended states allows the boom to exhibit more controllable self-deployment and become reconfigurable, which could allow spacecraft to relocate, redeploy, and adapt to changing environmental conditions or mission objectives. Deployment systems commonly include motors and mechanical restraints that significantly contribute to mechanical complexity and spacecraft weight. Since bistable booms do not rely on elastic instability of packaging to initiate motion, a non-intrusive and lightweight actuation mechanism is needed to trigger deployment. This paper experimentally demonstrates how a macro fiber composite actuator can statically and dynamically excite a stowed composite tape spring to initiate unrolling into its extended state. A finite element model in Abaqus/Explicit is also developed to computationally corroborate the deployment schemes discussed.

Structurae cannot make the full text of this publication available at this time. The full text can be accessed through the publisher via the DOI: 10.1088/1361-665x/ada650.
  • About this
    data sheet
  • Reference-ID
    10814779
  • Published on:
    03/02/2025
  • Last updated on:
    03/02/2025
 
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