DocumentCode :
162100
Title :
Mechanism design of controllable wings for autonomous underwater gliders
Author :
Zhijin Yang ; Yanhui Wang ; Zhiliang Wu ; Yuhong Liu ; Hongwei Zhang ; Shuxin Wang
Author_Institution :
Key Lab. of Mechanism Theor. & Equip. Design of Minist. of Educ., Tianjin Univ., Tianjin, China
fYear :
2014
fDate :
7-10 April 2014
Firstpage :
1
Lastpage :
5
Abstract :
Compared with autonomous underwater gliders (AUGs) with fixed wings, gliders with controllable wings have variable hydrodynamics coefficients to achieve better flight performance. In this paper, relations between flight performance and shapes of wings are analyzed. A combined mechanism which contains two sub-mechanisms is presented. It can achieve three kinds of shape changing motions including wings extending and rotating along two axes. With the method of mechanism synthesis, the second sub-mechanism with two degrees of freedom is designed. Rotation vector algorithm is used to establish kinematics models. Forward and inverse solutions of kinematics are obtained. Working space is analyzed. Results show that working space has good continuity and all bars have reasonable lengths. MATLAB is used in inverse solution and getting the control rules of motors. Motion simulation is carried out by ADAMS. Simulation results show that the variation range of wing´s length is o to 80mm. The variation range of sweep angle and attack angle is 0 to 70 degrees and 0 to 55 degrees. This design can satisfy needs of controllable AUGs.
Keywords :
aerospace components; aerospace engineering; autonomous underwater vehicles; design engineering; hydrodynamics; kinematics; mechanical engineering computing; ADAMS software; AUG; attack angle; autonomous underwater gliders; controllable wings; flight performance; forward kinematics; inverse kinematics; kinematics models; mechanism design; mechanism synthesis; motion simulation; rotation vector algorithm; shape changing motion; sweep angle; variable hydrodynamics coefficients; wing shapes; Equations; Iron; Kinematics; Mathematical model; Rails; Shape; Vectors; autonomous underwater gliders; controllable wings; kinematics study; mechanism design; shape changing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
OCEANS 2014 - TAIPEI
Conference_Location :
Taipei
Print_ISBN :
978-1-4799-3645-8
Type :
conf
DOI :
10.1109/OCEANS-TAIPEI.2014.6964424
Filename :
6964424
Link To Document :
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