双稳态
运动学
扭转(腹足类)
机械工程
工程类
弧长
势能
变形(气象学)
结构工程
能量(信号处理)
能量转换
偏转(物理)
失真(音乐)
铰链
计算机科学
弧(几何)
四面体
控制理论(社会学)
机械系统
基质(化学分析)
几何形状
滑轮
作者
Weirui Liu,Keyu Chen,Hui Yang,Xingjun Gao
标识
DOI:10.1088/1361-665x/ae7783
摘要
Abstract This paper proposes a novel bistable origami soft gripper utilizing arc creases and leaf-fold structure, aimed at enhancing bistable speed and energy conversion efficiency. This study constructed a kinematic model of fold motion using spherical trigonometry theory and the D-H matrix method to investigate the geometric transmission relationship between dihedral and unfolded angles. Subsequently, an energy model combining torsion spring models with the Von Karman plate-shell theory was established to elucidate the potential energy between straight and curved creases. This theoretical framework showed a detailed analysis of the regulatory effects of crease length, curvature, and leaf-fold structure on system energy changes. The initial potential energy of the system and the deformation magnitude required for bistable switching were further enhanced by integrating elastic preload elements into the leaf-fold structure. Some comprehensive tests were conducted to evaluate the effects of various crease types and auxiliary structures on bistable deformation speed, trigger force, and grasping force. Furthermore, grasping experiments were performed on both static multi-attribute object adaptive grasping and dynamic rapid grasping. The results demonstrated that the arc crease significantly enhanced the system energy accumulation efficiency and bistable speed. This design offered notable advantages in structural simplicity and versatile grasping capabilities, providing technical support for diverse soft-grasping applications, including industrial sorting, fruit picking, and similar tasks.
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