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Case Study of a MEMS Snap-Through Actuator: Modeling and Fabrication Considerations

MEMS actuators rely on the deformation of silicon structures. Using dimensions smaller than dozens of micrometers reveals that the micro-electro-mechanical systems (MEMS) actuators are affected by fabrication inaccuracies, leading to hardly predictable forces and/or actuation results. In this paper,...

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Autores principales: Shi, Zhichao, Martincic, Emile, Moulin, Johan, Lefeuvre, Elie, Lamarque, Frédéric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9144275/
https://www.ncbi.nlm.nih.gov/pubmed/35630121
http://dx.doi.org/10.3390/mi13050654
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author Shi, Zhichao
Martincic, Emile
Moulin, Johan
Lefeuvre, Elie
Lamarque, Frédéric
author_facet Shi, Zhichao
Martincic, Emile
Moulin, Johan
Lefeuvre, Elie
Lamarque, Frédéric
author_sort Shi, Zhichao
collection PubMed
description MEMS actuators rely on the deformation of silicon structures. Using dimensions smaller than dozens of micrometers reveals that the micro-electro-mechanical systems (MEMS) actuators are affected by fabrication inaccuracies, leading to hardly predictable forces and/or actuation results. In this paper, MEMS bistable buckled beam actuators are presented. A series of structures based on pre-shaped buckled beams of lengths ranging from 2 to 4 mm, constant width of 5 μm and actuation stroke ranging from 20 to 100 μm was fabricated. Experimental data show a significant difference with predictions from a conventional analytical model. The model commonly used for buckled beams design assumes a rectangular beam section, but it is not the case of the fabricated beams. Furthermore, only symmetric buckling modes (mode 1, mode 3…) are supposed to exist during snap-through. In this paper, new analytical models have been developed on the basis of the models of the literature to consider the effective beam shape. The first improved analytical model enabled prediction of the MEMS buckled beams mechanical behavior in a 30% margin on the whole range of operation. A second model has been introduced to consider both the effective shape of the beam and centro-symmetric buckling modes. This refined model exhibits the partial suppression of buckling mode 2 by a central shuttle. Therefore, mode 2 and mode 3 coexist at the beginning and the end of snap-through, while mode 3 quickly vanishes due to increasing rotation of the central shuttle to leave exclusive presence of mode 2 near the mid-stroke. With this refined model, the effective force-displacement curve can be predicted in a margin reduced to a few percentages in the center zone of the response curve, allowing the accurate prediction of the position switch force. In addition, the proposed model allows accurate results to be reached with very small calculation time.
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spelling pubmed-91442752022-05-29 Case Study of a MEMS Snap-Through Actuator: Modeling and Fabrication Considerations Shi, Zhichao Martincic, Emile Moulin, Johan Lefeuvre, Elie Lamarque, Frédéric Micromachines (Basel) Article MEMS actuators rely on the deformation of silicon structures. Using dimensions smaller than dozens of micrometers reveals that the micro-electro-mechanical systems (MEMS) actuators are affected by fabrication inaccuracies, leading to hardly predictable forces and/or actuation results. In this paper, MEMS bistable buckled beam actuators are presented. A series of structures based on pre-shaped buckled beams of lengths ranging from 2 to 4 mm, constant width of 5 μm and actuation stroke ranging from 20 to 100 μm was fabricated. Experimental data show a significant difference with predictions from a conventional analytical model. The model commonly used for buckled beams design assumes a rectangular beam section, but it is not the case of the fabricated beams. Furthermore, only symmetric buckling modes (mode 1, mode 3…) are supposed to exist during snap-through. In this paper, new analytical models have been developed on the basis of the models of the literature to consider the effective beam shape. The first improved analytical model enabled prediction of the MEMS buckled beams mechanical behavior in a 30% margin on the whole range of operation. A second model has been introduced to consider both the effective shape of the beam and centro-symmetric buckling modes. This refined model exhibits the partial suppression of buckling mode 2 by a central shuttle. Therefore, mode 2 and mode 3 coexist at the beginning and the end of snap-through, while mode 3 quickly vanishes due to increasing rotation of the central shuttle to leave exclusive presence of mode 2 near the mid-stroke. With this refined model, the effective force-displacement curve can be predicted in a margin reduced to a few percentages in the center zone of the response curve, allowing the accurate prediction of the position switch force. In addition, the proposed model allows accurate results to be reached with very small calculation time. MDPI 2022-04-20 /pmc/articles/PMC9144275/ /pubmed/35630121 http://dx.doi.org/10.3390/mi13050654 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shi, Zhichao
Martincic, Emile
Moulin, Johan
Lefeuvre, Elie
Lamarque, Frédéric
Case Study of a MEMS Snap-Through Actuator: Modeling and Fabrication Considerations
title Case Study of a MEMS Snap-Through Actuator: Modeling and Fabrication Considerations
title_full Case Study of a MEMS Snap-Through Actuator: Modeling and Fabrication Considerations
title_fullStr Case Study of a MEMS Snap-Through Actuator: Modeling and Fabrication Considerations
title_full_unstemmed Case Study of a MEMS Snap-Through Actuator: Modeling and Fabrication Considerations
title_short Case Study of a MEMS Snap-Through Actuator: Modeling and Fabrication Considerations
title_sort case study of a mems snap-through actuator: modeling and fabrication considerations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9144275/
https://www.ncbi.nlm.nih.gov/pubmed/35630121
http://dx.doi.org/10.3390/mi13050654
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