A low-profile flexural displacement-converter mechanism for piezoelectric stack actuators

[Display omitted] •The proposed motion-converter mechanism is only 10.5 mm.•The proposed motion-converter mechanism can generate a single-degree-of-freedom output motion.•The proposed motion-converter mechanism does not have any resonance peaks at frequencies below 1000 Hz.•The error between the num...

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Veröffentlicht in:Sensors and actuators. A. Physical. 2020-10, Vol.313, p.112198, Article 112198
Hauptverfasser: Tajdari, F., Berkhoff, A.P., Naves, M., Nijenhuis, M., de Boer, A.
Format: Artikel
Sprache:eng
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Zusammenfassung:[Display omitted] •The proposed motion-converter mechanism is only 10.5 mm.•The proposed motion-converter mechanism can generate a single-degree-of-freedom output motion.•The proposed motion-converter mechanism does not have any resonance peaks at frequencies below 1000 Hz.•The error between the numerical and the experimental results can vary but not more than 15%. A thin flexure-based mechanism is proposed that is useful in applications with limited build space. The proposed mechanism converts the initial in-plane motion of two piezoelectric stack actuators to an out-of-plane translational motion. Two actuators in the symmetric design of the proposed APA can be used to ensure a pure translation output motion. A Finite Element (FE) model is used to analyze the rigid multibody model of the proposed mechanism. The rigid multibody model is used to design the desired flexural mechanism in a three-dimensional space. The proposed design is then manufactured and is subjected to an experimental study. Measurements validate the performance of the proposed design with an error of less than 15%. A parametric study on the effect of the applied voltage to the actuators of the proposed mechanism reveals good agreement between the numerical model and the manufactured mechanism.
ISSN:0924-4247
1873-3069
DOI:10.1016/j.sna.2020.112198