A computationally efficient model to capture the inertia of the piezoelectric stack in impact drive mechanism in the case of the in-pipe inspection application
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Published:2016-03-17
Issue:1
Volume:7
Page:79-84
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ISSN:2191-916X
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Container-title:Mechanical Sciences
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language:en
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Short-container-title:Mech. Sci.
Author:
Li Jin,Liu Chang Jun,Xiong Xin Wen,Liu Yi Fan,Zhang Wen Jun
Abstract
Abstract. This paper presents a new model for the piezoelectric actuator (PA) in the context of in the impact drive mechanism (IDM) for the in-pipe inspection application. The feature of the model is capturing the inertia of PA stack in a distributed manner as opposed to the lumped manner in literature. The benefit arising from this feature is a balanced trade-off between computational efficiency and model accuracy. The study presented in this paper included both theoretical development (i.e. the model of the piezoelectric actuator and the model of the entire IDM which includes the actuator) and experimental verification of the model. The study has shown that (1) the inertia of the PA in such a robot will significantly affect the accuracy of the entire model of IDM and (2) the simulation of the dynamic behavior with the proposed model is sufficiently accurate by comparing with the experiment. It is thus recommended that the inertia of the PA be considered in the entire model of the IDM robot. The model is an analytical type, which has a high potential to be used for the model-based control of the IDM robot and optimization of its design for a much improved performance of the IDM system.
Funder
National Natural Science Foundation of China
Publisher
Copernicus GmbH
Subject
Industrial and Manufacturing Engineering,Fluid Flow and Transfer Processes,Mechanical Engineering,Mechanics of Materials,Civil and Structural Engineering,Control and Systems Engineering
Reference25 articles.
1. Chang, S. H. and Li, S. S.: A High Resolution Long Travel Friction-drive
Micro-positioner with Programmable Step Size, Rev. Sci. Instrum., 70, 2776–2782, 1999. 2. Dario, P., Hannaford, B., and Menciassi, A.: Smart surgical tools and
augmenting devices, IEEE Trans. Robot. Autom., 19, 782–791, 2003. 3. Fatikow, S. and Rembold, U.: Microsystem Technology and Microrobotics,
Springer-Verlag, Berlin, Heidelberg, 303–361, 2009. 4. Fukui, R., Torii, A., and Ueda, A.: Micro robot actuated by rapid deformation
of piezoelectric elements, International Symposium on Micromechatronics and
Human Science, 9–12 September 2001, Nagoya, Japan, 117–122, 2001. 5. Fung, R. F., Han, C. F., and Ha, G. L.: Dynamic Responses of the Impact Drive
Mechanism Modeled by the Distributed Parameter System, Appl. Math. Model.,
32, 1734–1743, 2008.
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