We present a symmetric five-bar compliant mechanism for the displacement amplification of mechanical vibration. When the proposed mechanism is connected to an energy harvester, amplification of the input excitation vibration amplitude leads to an increase in the harvested power. Displacements in the compliant mechanism are caused by deflections in its flexure hinges. The flexure hinges we use are either of the right-circular, or the corner-filleted types. The mechanism is analyzed using energy methods. The displacement amplification was verified analytically and numerically using a finite element model. Through our model we present relations governing the displacement amplification in terms of the design parameters, such as the geometry of the mechanism, the flexure hinges dimensions, in addition to the load caused by the harvester. The effects of the flexure hinge dimensions on displacement amplification, are also presented.
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ASME 2015 Conference on Smart Materials, Adaptive Structures and Intelligent Systems
September 21–23, 2015
Colorado Springs, Colorado, USA
Conference Sponsors:
- Aerospace Division
ISBN:
978-0-7918-5730-4
PROCEEDINGS PAPER
Modeling of a Symmetric Five-Bar Displacement Amplification Compliant Mechanism Using Energy Methods
Moataz M. Elsisy,
Moataz M. Elsisy
Cairo University, Giza, Egypt
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Mustafa Arafa,
Mustafa Arafa
American University in Cairo, New Cairo, Egypt
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Chahinaz Saleh
Chahinaz Saleh
Cairo University, Giza, Egypt
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Moataz M. Elsisy
Cairo University, Giza, Egypt
Yasser Anis
Cairo University, Giza, Egypt
Mustafa Arafa
American University in Cairo, New Cairo, Egypt
Chahinaz Saleh
Cairo University, Giza, Egypt
Paper No:
SMASIS2015-8829, V002T07A002; 7 pages
Published Online:
January 11, 2016
Citation
Elsisy, MM, Anis, Y, Arafa, M, & Saleh, C. "Modeling of a Symmetric Five-Bar Displacement Amplification Compliant Mechanism Using Energy Methods." Proceedings of the ASME 2015 Conference on Smart Materials, Adaptive Structures and Intelligent Systems. Volume 2: Integrated System Design and Implementation; Structural Health Monitoring; Bioinspired Smart Materials and Systems; Energy Harvesting. Colorado Springs, Colorado, USA. September 21–23, 2015. V002T07A002. ASME. https://doi.org/10.1115/SMASIS2015-8829
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