解耦(概率)
Timoshenko梁理论
应变计
有限元法
力矩(物理)
梁(结构)
结构工程
互连
物理
计算机科学
工程类
控制理论(社会学)
经典力学
控制工程
电信
人工智能
控制(管理)
作者
Chyi‐Yeu Lin,Anton Royanto Ahmad,Getnet Ayele Kebede
出处
期刊:Sensors
[Multidisciplinary Digital Publishing Institute]
日期:2020-01-10
卷期号:20 (2): 395-395
被引量:24
摘要
In this study, a novel six-axis force/moment (F/M) sensor was developed. The sensor has a novel ring structure comprising a cross-beam elastic body with sliding and rotating mechanisms to achieve complete decoupling. The unique sliding and rotating mechanisms can reduce cross-talk effects caused by minimized structural interconnection. The forces Fx, Fy, and Fz and moments Mx, My, and Mz can be measured for the six-axis F/M sensors according to the elastic deformation of strain gauges attached to the cross beam. Herein, we provide detailed descriptions of the mathematical models, model idealizations, model creation, and the mechanical decoupling principle. The paper also presents a theoretical analysis of the strain based on Timoshenko beam theory and the subsequent validation of the analysis results through a comparison of the results with those obtained from a numerical analysis conducted using finite element analysis simulations. The sensor was subjected to experimental testing to obtain the maximum cross-talk errors along the following six axes under different loadings (the errors are presented in parentheses): Fx under SMy (2.12%), Fy under SMx (1.88%), Fz under SMz (2.02%), Mx under SFz (1.15%), My under SFx (1.80%), and Mz under SFx (2.63%). The proposed sensor demonstrated a considerably improved cross-talk error performance compared with existing force sensors.
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