机制(生物学)
桥(图论)
阶段(地层学)
平面(几何)
结构工程
类型(生物学)
工程类
物理
几何学
地质学
数学
生物
解剖
量子力学
古生物学
作者
Xianfeng Shi,Shuaishuai Lu,Fei Wang,Pengbo Liu,Guangchun Xiao,Yan Peng
出处
期刊:Machines
[Multidisciplinary Digital Publishing Institute]
日期:2025-05-05
卷期号:13 (5): 386-386
标识
DOI:10.3390/machines13050386
摘要
Piezo-driven compliant actuators capable of out-of-plane displacement from the substrate are urgently required in the fields of micro/nano manipulations and active optics, where compact size and low-profile configurations are often critical. In this paper, a two-stage amplification mechanism is developed by orthogonal series connection of a bridge-type mechanism and a Scott-Russell mechanism, for the sake of a large amplification ratio and high stiffness. The low-profile configuration is realized by horizontally mounting the piezoelectric actuator within the planar bridge-type amplification mechanism. The bridge-type mechanism initially amplifies the output displacement of the piezoelectric actuator. A compound guiding mechanism at the output end significantly enhances the equivalent stiffness and constrains parasitic displacements of the bridge-type mechanism. The second-stage Scott–Russell mechanism, further amplifies and converts the in-plane displacement into out-of-plane motion. The kinematic and static model of the developed mechanism is established using the compliance matrix method, enabling precise prediction of the amplification ratio and input/equivalent stiffness. Finite element simulations and experimental tests on the prototype validate the modeling accuracy and mechanical performance of the proposed low-profile amplification mechanism, demonstrating a large amplification ratio of 15.70, a high resonant frequency of 312.50 Hz, and a load-bearing capacity up to 20 N.
科研通智能强力驱动
Strongly Powered by AbleSci AI