Design & Kinematics Analysis of a Tracked Omnidirectional Mobile Platform

2014 ◽  
Vol 50 (21) ◽  
pp. 206
Author(s):  
Tao HUANG
2017 ◽  
Vol 9 (9) ◽  
pp. 168781401772668 ◽  
Author(s):  
Yingzhong Tian ◽  
Shiyu Zhang ◽  
Jiaorong Liu ◽  
Feixue Chen ◽  
Long Li ◽  
...  

2021 ◽  
Vol ahead-of-print (ahead-of-print) ◽  
Author(s):  
Niu Zijie ◽  
Zhang Peng ◽  
Yongjie Cui ◽  
Zhang Jun

Purpose Omnidirectional mobile platforms are still plagued by the problem of heading deviation. In four-Mecanum-wheel systems, this problem arises from the phenomena of dynamic imbalance and slip of the Mecanum wheels while driving. The purpose of this paper is to analyze the mechanism of omnidirectional motion using Mecanum wheels, with the aim of enhancing the heading precision. A proportional-integral-derivative (PID) setting control algorithm based on a radial basis function (RBF) neural network model is introduced. Design/methodology/approach In this study, the mechanism of omnidirectional motion using Mecanum wheels is analyzed, with the aim of enhancing the heading precision. A PID setting control algorithm based on an RBF neural network model is introduced. The algorithm is based on a kinematics model for an omnidirectional mobile platform and corrects the driving heading in real time. In this algorithm, the neural network RBF NN2 is used for identifying the state of the system, calculating the Jacobian information of the system and transmitting information to the neural network RBF NN1. Findings The network RBF NN1 calculates the deviations ?Kp, ?Ki and ?Kd to regulate the three coefficients Kp, Ki and Kd of the heading angle PID controller. This corrects the driving heading in real time, resolving the problems of low heading precision and unstable driving. The experimental data indicate that, for a externally imposed deviation in the heading angle of between 34º and ∼38°, the correction time for an omnidirectional mobile platform applying the algorithm during longitudinal driving is reduced by 1.4 s compared with the traditional PID control algorithm, while the overshoot angle is reduced by 7.4°; for lateral driving, the correction time is reduced by 1.4 s and the overshoot angle is reduced by 4.2°. Originality/value In this study, the mechanism of omnidirectional motion using Mecanum wheels is analyzed, with the aim of enhancing the heading precision. A PID setting control algorithm based on an RBF neural network model is introduced. The algorithm is based on a kinematics model for an omnidirectional mobile platform and corrects the driving heading in real time. In this algorithm, the neural network RBF NN2 is used for identifying the state of the system, calculating the Jacobian information of the system and transmitting information to the neural network RBF NN1. The method is innovative.


2014 ◽  
Vol 635-637 ◽  
pp. 1315-1320 ◽  
Author(s):  
Xiao Yan Qi ◽  
Wei Ren Wang ◽  
Hao Dong ◽  
Wei Li

Kinematics analysis of mechanism refers to analysis for pose、speed and acceleration of mobile platform of spatial 3-RPS parallel mechanism. In this paper, mathematical model of spatial 3-RPS parallel mechanism is primarily built, and the close loop equation is adopted for the positional posture analysis of the mobile platform, then the positional posture of mobile paltform is acquired. Finally, kinematical simulation will be acquired by software Adams, which makes sense in kinematical performance of spatial 3-RPS parallel mechanism.


2014 ◽  
Vol 19 (6) ◽  
pp. 1872-1881 ◽  
Author(s):  
Jianting Ma ◽  
Haissam Kharboutly ◽  
Abderraouf Benali ◽  
Faiz Ben Amar ◽  
Mourad Bouzit

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