基于两杆拉伸机构的伸展臂设计方法。

IF 1.8 4区 计算机科学 Q3 ENGINEERING, BIOMEDICAL
Applied Bionics and Biomechanics Pub Date : 2025-02-22 eCollection Date: 2025-01-01 DOI:10.1155/abb/3313533
Song Gao, GuoFu Zhang, Yue Zhao, XiaoHui Yu, JianWei Sun
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引用次数: 0

摘要

可展开可折叠结构是一种独特的结构体系,便于运输和扩展。虽然目前的可展开桅杆可以在封闭和扩展结构之间转换,但它在移动过程中缺乏稳定性,并且在收缩后没有自行恢复的能力。因此,改善可部署机制的稳定性,同时使它们能够自我恢复,已成为发展的一个重要领域。空间可展开桅杆的伸缩特性对航空航天至关重要。本文以一榀二杆四缆张拉整体结构为研究对象。提出了一种零泊松比、自稳定、自适应的空间可展开桅杆结构。与现有的空间可展开桅杆相比,新型可展开桅杆采用了张拉整体结构特征,使其能够在收缩状态下自主恢复到初始状态。首先,在二杆四索张拉整体结构的基础上进行创新设计,通过增加纵轴来限制结构的自由度,将结构演化为零泊松比的二杆四索张拉整体结构,并结合力密度法分析结构的稳定性,推导出最优尺寸参数;刚度矩阵Q (K)的正确定性表明该机构具有优异的稳定性。其次,利用ABAQUS (DS, France)软件对机构的承载特性进行了验证。此外,根据ABAQUS (DS, France)的分析,与锁定一个轨道相比,锁定三个轨道的新型空间可展开桅杆的最小抗压刚度为12 × 108 N/m。最终,通过应用三维(3D)打印技术开发了一个原型。在压力试验机和万能试验机上进行了力应变实验,得到的图像证明了研究结果。实验结果表明,新型可展开桅杆结构具有自恢复和自稳定能力。该研究推动了可展开桅杆多功能性的前沿,并将张拉整体结构的应用领域显著扩展到航空航天领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Extension Arm Design Method Based on a Two-Bar Tension Stretchable Mechanism.

The deployable and foldable structure is a unique structural system that provides convenience in terms of transportation and expansion. Although the current deployable mast can transition between closed and extended structures, it lacks stability during movement and does not have the ability to recover on its own after contracting. Hence, improving the stability of deployable mechanisms while enabling them to self-restore has become an essential area for development. Spatial deployable mast expansion and contraction properties are essential for aerospace. In this paper, based on a two-bar and four-cable tensegrity structure, the research was conducted. A new spatially deployable mast structure with zero Poisson's ratio and self-stability, as well as self-adaptability, is proposed. In comparison to existing space deployable masts, the new deployable masts incorporate a tensegrity structure feature that enables them to recover autonomously to their initial state in a contracted state. Firstly, an innovative design based on a two-bar, four-cord tensegrity structure is conducted, which evolves into a two-bar and four-cable tensegrity structure with zero Poisson's ratio by increasing the longitudinal axis to restrict the structure's degrees of freedom and combines with the force density method to analyze the stability of the structure and derive the optimal dimensional parameters. The positive definiteness of the stiffness matrix Q (K) demonstrates the exceptional stability of the mechanism. Secondly, the load-bearing characteristics of the mechanism were verified utilizing ABAQUS (DS, France) software. Besides, the minimum compressive stiffness of the new space deployable mast for locking three rails compared to locking one rail is 12 × 108 N/m, as derived from ABAQUS (DS, France) analysis. Ultimately, a prototype was developed through the application of three-dimensional (3D) printing technology. The force-strain experiment was conducted using both a pressure testing machine and a universal testing machine, and the resulting images demonstrated the findings. The experimental results demonstrate that the novel deployable mast structure has self-recovering and self-stabilizing capabilities. This research pushes the frontiers of deployable mast multifunctionality as well as significantly expands the application domain of tensegrity structures to the aerospace sector.

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来源期刊
Applied Bionics and Biomechanics
Applied Bionics and Biomechanics ENGINEERING, BIOMEDICAL-ROBOTICS
自引率
4.50%
发文量
338
审稿时长
>12 weeks
期刊介绍: Applied Bionics and Biomechanics publishes papers that seek to understand the mechanics of biological systems, or that use the functions of living organisms as inspiration for the design new devices. Such systems may be used as artificial replacements, or aids, for their original biological purpose, or be used in a different setting altogether.
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