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May 28, 2026Journal of Intelligent Material Systems and Structures0 citations

Passive acoustic logic via topology-optimized waveguides

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AJAli JafariMMMohamed MousaMNMostafa Nouh

Key Points

  • This research aims to develop a low-power computing mechanism using mechanical logic based on wave propagation.
  • Leveraged topology optimization to discover efficient waveguide designs.
  • Created experimental setups to validate mechanical logic gates.
  • Integrated waveguides into a mechanical full adder for scalable computing circuits.
  • Demonstrated successful manipulation of wave paths with optimized waveguides for particular logic functions.
  • Experimental setups showed resilience of the logic gates to non-uniform loading conditions.
  • Results indicate potential for scalable mechanical computing systems beyond traditional methods.

Abstract

Growing energy demands of modern digital devices necessitate alternative, low-power computing mechanisms. When incident loads take the form of acoustic or vibrational waves, the ability to mechanically process information eliminates the need for transduction, paving the way for passive computing. Recent studies have proposed systems that learn and execute mechanical logic through buckling, bistability, and origami-inspired lattices. However, owing to the large timescales of shape morphing, such concepts suffer from slow operation or require active stimulation of adaptive materials. To address these limitations, we present a novel approach to mechanical logic, leveraging the rich dynamics of wave propagation in elastic structures. In lieu of traditional forward-design tools, such as band diagrams and transmission spectra, we employ a multi-faceted topology optimization approach, enabling us to identify candidate waveguide configurations within an extremely large design space. By incorporating voids within an otherwise uniform substrate, the optimized waveguides are able to precisely manipulate wave propagation paths, triggering desirable interferences of the scattered wavefield that culminate in energy localization at readouts corresponding to a given logic function. An experimental setup is used to demonstrate the efficacy of such logic gates and their resilience to non-uniform loading. By implementing these building blocks into a mechanical full adder, we demonstrate the scalable deployment of more sophisticated mechanical computing circuits, opening up new avenues in mechanical signal processing and physical computing.

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Cite This Study

Jafari et al. (2026) studied this question.

synapsesocial.com/papers/6a17dd4e3fad632b0f9da062https://doi.org/10.1177/1045389x261447386
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