有效载荷(计算)
惯性参考系
执行机构
压电
机器人
块(置换群论)
惯性测量装置
工程类
计算机科学
加速度计
控制工程
精密工程
虚拟力
压电马达
陀螺仪
压电传感器
惯性导航系统
微电子机械系统
加速度
控制理论(社会学)
机制(生物学)
模拟
电子工程
机器人学
作者
Wencheng Wu,Shupeng Wang,Xinbao Wang,Chutian Dai,Zhihui Zhang
标识
DOI:10.1109/tie.2025.3595959
摘要
Precision engineering applications demand actuators possessing high precision, high velocity, and substantial payload capacity to execute precise operations effectively. Therefore, a novel three-degrees of freedom (DOF) inertial piezoelectric robot is proposed in this study to improve the performance of traditional inertial piezoelectric actuation systems in terms of velocity, resolution, and payload capacity. Experimental validation on a 90-mm-diameter prototype demonstrates critical performance achievements: 1) integrated three-DOF actuation mechanism utilizing a common inertial mass and piezoelectric drive assembly, enabling enhanced structural compactness and integration; 2) achieving both 51.07 mm/s high-velocity and 11 nm ultrahigh resolution without altering the fundamental driving principle; and 3) the large-mass inertial block combined with multiple piezoelectric sheets is used to achieve a 70 N payload capacity (26 times its own weight). As a practical demonstration, an alignment experiment on two 190-μm-diameter optical fibers achieved submicron positioning accuracy. The proposed robot improves traditional inertial structures speed-resolution-payload performance and achieves cross-scale motion capability. These advances show significant potential for applications scenarios requiring high-velocity, high-precision, and heavy-payload performance, including precision microassembly and biological micromanipulation.
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