PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 7, 2026Mathematics0 citationsOpen Access

A Numerical Study of Tunable Multifunctional Metastructures via Solid–Liquid Phase Transition for Simultaneous Control of Sound and Vibration

View Full Paper
HJHyeonjun JeongJHJaeyub Hyun

Key Points

  • To develop a metastructure that dynamically controls both sound and vibration using a single temperature parameter.
  • Introduced a phase-change material (PCM)-embedded meta-atom design.
  • Analyzed phase transition effects on effective shear modulus during solid-liquid changes.
  • Evaluated temperature-dependent mode-selective transmission behavior of vibrations and acoustic waves.
  • Phase transition significantly alters effective shear modulus, enabling dynamic control of waves.
  • Opposing blocking and transmission characteristics are observed for transverse vibrations and acoustic waves.
  • Demonstrated the potential for decoupling sound and vibration management based on temperature control.

Abstract

Metastructures, waveguides composed of multiple unit cells (meta-atoms), have gained significant attention for controlling wave propagation in engineering applications, especially in the context of elastic and acoustic waves. However, existing metastructures often lack sufficient tunable functionality to dynamically control both elastic vibration and acoustic wave transmission using a single external parameter. This study introduces a phase-change material (PCM)-embedded meta-atom, where a core mass is connected to an outer shell by Archimedean spiral bridges. The solid–liquid phase transition of PCM induces a notable change in the effective shear modulus, enabling dynamic wave control. The mechanism for bandgap formation transitions from Bragg scattering in the solid PCM state to local resonance in the liquid state. Core rotation, driven by the phase transition, is key to generating flat bands and low-frequency locally resonant bandgaps at high temperatures. Temperature-dependent, mode-selective transmission behavior is observed, with transverse vibrations and acoustic waves exhibiting opposite blocking and transmission characteristics at the same frequency. This design provides a promising approach for decoupling sound and vibration management, using temperature control driven by the PCM phase transition. The work contributes to multifunctional metastructures with applications in adaptive noise control, structural health monitoring, and tunable vibration isolation systems.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Jeong et al. (2026) studied this question.

synapsesocial.com/papers/69d49fe5b33cc4c35a22859chttps://doi.org/10.3390/math14071213
Ask AI
Helpful
Bookmark
Share
View Full Paper