DocumentCode
2870194
Title
Notice of Retraction
Kinematics and dynamics simulation of the Slider-Crank mechanism based on Matlab/Simulink
Author
Mengsi Liu ; Yi Cao ; Qiuju Zhang ; Hui Zhou
Author_Institution
Huiguang Robot. Res. Center, Jiangnan Univ., Wuxi, China
Volume
9
fYear
2010
fDate
22-24 Oct. 2010
Abstract
Notice of Retraction
After careful and considered review of the content of this paper by a duly constituted expert committee, this paper has been found to be in violation of IEEE´s Publication Principles.
We hereby retract the content of this paper. Reasonable effort should be made to remove all past references to this paper.
The presenting author of this paper has the option to appeal this decision by contacting TPII@ieee.org.
This paper mainly addressed the kinematics and dynamics simulation of the Slider-Crank mechanism. After proposing a mathematical model for the forward displacement of the slider-crank mechanism, the mathematical models for the forward velocity and acceleration of the slider-crank mechanism are constructed, respectively. According to the theory of statical equilibrium, the mathematical model for the forward dynamics of the slider-crank mechanism is constituted as well based on the acceleration analysis of each component part of this mechanism under consideration. Taking into account of mathematical models for the forward kinematics and dynamics of the slider-crank mechanism, simulation models for the forward kinematics and dynamics of the slider-crank mechanism are constituted in the Matlab/Simulink simulation platform and the forward kinematics and dynamics simulation of the slider-crank mechanism was successfully accomplished based on Matlab/Simulink by which an arduous and complicated mathematical manipulation can be avoided and a lot of computation time can be saved. Examples of the simulation for the forward kinematics and dynamics of a slider-crank mechanism are given to demonstrate the above-mentioned theoretical results.
After careful and considered review of the content of this paper by a duly constituted expert committee, this paper has been found to be in violation of IEEE´s Publication Principles.
We hereby retract the content of this paper. Reasonable effort should be made to remove all past references to this paper.
The presenting author of this paper has the option to appeal this decision by contacting TPII@ieee.org.
This paper mainly addressed the kinematics and dynamics simulation of the Slider-Crank mechanism. After proposing a mathematical model for the forward displacement of the slider-crank mechanism, the mathematical models for the forward velocity and acceleration of the slider-crank mechanism are constructed, respectively. According to the theory of statical equilibrium, the mathematical model for the forward dynamics of the slider-crank mechanism is constituted as well based on the acceleration analysis of each component part of this mechanism under consideration. Taking into account of mathematical models for the forward kinematics and dynamics of the slider-crank mechanism, simulation models for the forward kinematics and dynamics of the slider-crank mechanism are constituted in the Matlab/Simulink simulation platform and the forward kinematics and dynamics simulation of the slider-crank mechanism was successfully accomplished based on Matlab/Simulink by which an arduous and complicated mathematical manipulation can be avoided and a lot of computation time can be saved. Examples of the simulation for the forward kinematics and dynamics of a slider-crank mechanism are given to demonstrate the above-mentioned theoretical results.
Keywords
dynamics; kinematics; mathematics computing; matrix algebra; shafts; vectors; Matlab/Simulink simulation; acceleration analysis; forward acceleration; forward dynamics; forward kinematics; forward velocity; mathematical model; slider-crank mechanism; Acceleration; Analytical models; Computational modeling; Couplings; Force; Kinematics; Mathematical model; Kinematics simulation; dynamics simulation; matlab/simulink; slider-crank mechanism; vector loop equation;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer Application and System Modeling (ICCASM), 2010 International Conference on
Conference_Location
Taiyuan
Print_ISBN
978-1-4244-7235-2
Type
conf
DOI
10.1109/ICCASM.2010.5622970
Filename
5622970
Link To Document