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Metal Hydride Fluidic Artificial Muscle Actuation System

Published online by Cambridge University Press:  01 February 2011

Alexandra Vanderhoff
Affiliation:
alexv@unr.nevada.edu, University of Nevada, Reno, Mechanical Engineering Dept., Reno, Nevada, United States
Kwang Kim
Affiliation:
kwangkim@unr.edu, United States
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Abstract

The study determines the feasibility of a new actuation system that couples a fluidic artificial muscle designed by Festo [1] with a metal hydride hydrogen compressor to create a compact, lightweight, noiseless system capable of high forces and smooth actuation. An initial model for the complete system is developed. The analysis is restricted in some aspects concerning the complexity of the hydriding/dehydriding chemical process of the system and the three-dimensional geometry of the reactor, but it provides a useful comparison to other actuation devices and clearly reveals the parameters necessary for optimization of the actuation system in future work. The system shows comparable work output and has the benefits of biological muscle-like properties [2] for use in robotic systems. When compared to other previously developed metal hydride actuation systems the potential for increasing the reaction kinetics and improving the overall power output of the system is revealed. A comparison of the system to common actuation devices, including a biological muscle, shows similar stress and strain relations, but a lower power and frequency range due to the slow actuation time. Improving the reaction kinetics of the system will be the first approach to enhancing the system, along with optimization of the mass and type of metal hydride used in the reactor to produce a full actuation stoke of the fluidic muscle while minimizing system weight.

Type
Research Article
Copyright
Copyright © Materials Research Society 2009

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References

REFERENCES

2. Klute, G.K. and Czerniecki, J.M, Hannaford, B. Int. J. Robotics Research. 21 (4), 295 (2002).Google Scholar
3. Chou, C. and Hannaford, B, Report No. G93268R, 1996.Google Scholar
4. Daerden, F., Ph.D Thesis, Vrije Universiteit Brussel, 1999.Google Scholar
5. Gopal, M.R. and Murthy, S.S., Int.J.Hydrogen Energy. 20, 911 (1995).Google Scholar
6. Gopal, M.R. and Murthy, S.S., Int. J.Hydrogen Energy. 17(10), 795 (1992).Google Scholar
7. Incropera, F.P. and Dewitt, D.P, Introduction to Heat Transfer. (John Wiley & Sons, Inc. New York, 2002).Google Scholar
8. Lee, M., Master Thesis, University of Nevada, Reno, 2007.Google Scholar
9. Kim, K.J., Active Materials and Processing Laboratory (metal hydride property information) University of Nevada, Reno.Google Scholar
10. Shimizu, S. and Ino, S., Sato, M., Odagawa, T., Izumi, T., Takahashi, M., Ifukube, T. Report No. N12 W6, Hokkaido University, 1993.Google Scholar
11. Yuichi, W. and Muro, M., Kabutomori, T., Takeda, H., Shimizu, S., Ino, S., Ifukube, T. IEEE 5, 148 (1997).Google Scholar
12. Kiyoung, C. and Kim, K.J., Kim, D., Manford, C., Heo, S., Shahinpoor, M. J. Intelligent Material Systems and Structures. 17, 563 (2006).Google Scholar