张拉整体
多稳态
超弹性材料
弹性能
刚度
双稳态
联轴节(管道)
结构工程
能量(信号处理)
顺应机制
变形(气象学)
机制(生物学)
材料科学
理论(学习稳定性)
势能
恢复力
振动
圈地
能量转换
机械能
变硬
非线性系统
绳子
铰链
控制理论(社会学)
工程类
机械工程
消散
变形机理
能量法
计算机科学
执行机构
振动控制
机械
应变能
吸收(声学)
结构稳定性
包含能量
高效能源利用
滑轮
作者
Huanan Hao,Xiaolong Zhang,Mingrui Zhang,Ruilan Tian
标识
DOI:10.1088/1361-665x/ae3ff8
摘要
Abstract Tensegrity structures based on sliding cable mechanisms demonstrate dynamically tunable load-bearing capacities and configuration adaptive behaviors, offering versatile frameworks for multifunctional engineering applications. This paper proposes a locally-elastically-connected clustered tensegrity structure (LEC-CTS) utilizing a commercial elastic rope with large deformation capacity. The LEC-CTS employs a coupled design consisting of horizontal and vertical cables (HC and VC). The elastic potential energy of the HC increases monotonically, while that of the VC increases initially and then decreases. This coupling is responsible for generating of multistability in the structure. This mechanism is validated by deriving closed-form expressions for the LEC-CTS energy and restoring force using an Ogden-type hyperelastic constitutive model in conjunction with D’Alembert’s principle. The study systematically investigates the effects of structural geometric parameters, elastic cable configurations, and parameters on the steady-state response. The results indicate that LEC-CTS’s stability performance can be modulated among monostable, sustained steady-state, and bistable states through control of the stiffness ratio n . The variable stiffness design of elastic cables in LEC-CTS significantly changes energy regulation efficiency. The energy release-to-absorption ratio decreases by 40% (from 52% to 12%), and the ratio of released energy to initially absorbed energy increases by 21% (from 77% to 98%). The sliding-cable mechanism enables up to 650% extension in operational range, providing a pronounced performance advantage over fixed-cable configurations. In comparison, the fixed cable configuration exhibits multitransitional behavior suitable for graded energy absorption and multi-threshold mechanical equipment.
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