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首页> 外文期刊>Journal of Mechanisms and Robotics: Transactions of the ASME >Design and Validation of a Carbon-Fiber Collapsible Hinge for Space Applications: A Deployable Boom
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Design and Validation of a Carbon-Fiber Collapsible Hinge for Space Applications: A Deployable Boom

机译:用于太空应用的碳纤维可折叠铰链的设计和验证:可展开的动臂

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摘要

This work presents an analysis and validation of a foldable boom actuated by tape-spring foldable elastic hinges for space applications. The analytical equations of tape-springs are described, extending the classical equations for isotropic materials to orthotropic carbon-fiber composite materials. The analytical equations which describe the buckling of the hinge have been implemented in a multibody simulation software where the hinge was modeled as a nonlinear elastic bushing and the boom as a rigid body. In the experimental phase, the boom was fabricated using a thin layer carbon-fiber composite tube, and the residual vibrations after deployment were experimentally tested with a triaxial accelerometer. A direct comparison of the simulation with the physical prototype pointed out the dangerous effect of higher order vibrations which are difficult to capture in simulation. We observed that while the vibrational spectra of simulations and experiments were compatible at low frequencies during deployment, a marked difference was observed at frequencies beyond 30 Hz. While difficult to model, higher order frequencies should be carefully accounted for in the design of self-deployable space structures. Indeed, if tape-springs are used as a self-locking mechanism, the higher vibrational modes could have enough energy to unlock the structure during operation.
机译:这项工作提供了对用于空间应用的带弹簧可折叠弹性铰链致动的可折叠吊臂的分析和验证。描述了带状弹簧的解析方程,将各向同性材料的经典方程式扩展到正交各向异性碳纤维复合材料。描述铰链屈曲的解析方程已在多体仿真软件中实现,其中铰链建模为非线性弹性衬套,吊杆建模为刚体。在实验阶段,动臂是使用薄层碳纤维复合管制造的,展开后的残余振动通过三轴加速度计进行了实验测试。直接将模拟与物理原型进行比较,指出了难以在模拟中捕获的高阶振动的危险影响。我们观察到,虽然仿真和实验的振动谱在部署期间的低频下是兼容的,但在超过30 Hz的频率下观察到明显的差异。尽管很难建模,但在设计可自行部署的空间结构时应谨慎考虑高阶频率。实际上,如果将带状弹簧用作自锁机构,则较高的振动模式可能具有足够的能量以在操作过程中解锁结构。

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