Wave propagation in an elastic lattice with non-reciprocal stiffness and engineered damping

Fuente: arXiv
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Main Authors: Sandhu, Harshit Kumar, Dutta, Saurav, Chaunsali, Rajesh
Format: Preprint
Published: 2025
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_version_ 1866911415503159296
author Sandhu, Harshit Kumar
Dutta, Saurav
Chaunsali, Rajesh
author_facet Sandhu, Harshit Kumar
Dutta, Saurav
Chaunsali, Rajesh
contents Nonreciprocal wave propagation allows for directional energy transport. In this work, we systematically investigate wave dynamics in an elastic lattice that combines nonreciprocal stiffness with viscous damping. After establishing how conventional damping counteracts the system's gain, we introduce a non-dissipative form of nonreciprocal damping in the form of gyroscopic damping. We find that the coexistence of nonreciprocal stiffness and nonreciprocal damping results in a decoupled control mechanism. The nonreciprocal stiffness is shown to govern the temporal amplification rate, while the nonreciprocal damper independently tunes the wave's group velocity and oscillation frequency. This decoupling gives rise to phenomena such as the enhancement of net amplification for slower-propagating waves, and also boundary-induced wave interference arising from divergent and convergent reflected wave trajectories with varying growth rates. These findings provide a theoretical framework for designing active metamaterials with more versatile control over their wave propagation characteristics.
format Preprint
id arxiv_https___arxiv_org_abs_2507_23761
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Wave propagation in an elastic lattice with non-reciprocal stiffness and engineered damping
Sandhu, Harshit Kumar
Dutta, Saurav
Chaunsali, Rajesh
Applied Physics
Mesoscale and Nanoscale Physics
Nonreciprocal wave propagation allows for directional energy transport. In this work, we systematically investigate wave dynamics in an elastic lattice that combines nonreciprocal stiffness with viscous damping. After establishing how conventional damping counteracts the system's gain, we introduce a non-dissipative form of nonreciprocal damping in the form of gyroscopic damping. We find that the coexistence of nonreciprocal stiffness and nonreciprocal damping results in a decoupled control mechanism. The nonreciprocal stiffness is shown to govern the temporal amplification rate, while the nonreciprocal damper independently tunes the wave's group velocity and oscillation frequency. This decoupling gives rise to phenomena such as the enhancement of net amplification for slower-propagating waves, and also boundary-induced wave interference arising from divergent and convergent reflected wave trajectories with varying growth rates. These findings provide a theoretical framework for designing active metamaterials with more versatile control over their wave propagation characteristics.
title Wave propagation in an elastic lattice with non-reciprocal stiffness and engineered damping
topic Applied Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2507.23761