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arXiv · 2307.10933

Designing a braille reader using the snap buckling of bistable magnetic shells

Abstract

A design concept is introduced for the building block, a dot, of programmable braille readers utilizing bistable shell buckling, magnetic actuation, and pneumatic loading. The design process is guided by Finite Element simulations, which are initially validated through precision experiments conducted on a scaled-up, single-shell model system. Then, the simulations are leveraged to systematically explore the design space, adhering to the standardized geometric and physical specifications of braille systems. The findings demonstrate the feasibility of selecting design parameters that satisfy both geometric requirements and blocking forces under moderate magnetic fields, facilitated by pneumatic loading to switch between the two stable states. The advantages of the proposed design include the reversible bistability of the actuators and fast state-switching via a transient magnetic field. While the study is focused on experimentally validated numerical simulations, several manufacturing challenges that need to be resolved for future physical implementations are identified.

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Arefeh Abbasi, Tian Chen, Bastien F. G. Aymon, Pedro M. Reis. 2023-07-20. Designing a braille reader using the snap buckling of bistable magnetic shells. https://arxiv.org/abs/2307.10933

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