Meta-dissipation: A framework for quantifying energy dissipation in dissipative discrete periodic metamaterials
Abstract
Quantifying energy dissipation in dissipative periodic discrete metamaterials remains a challenge, as traditional interpretations of metadamping, based on summing modal damping ratios, do not consistently reflect actual time-domain energy loss in multi-modal systems. The study addresses this critical gap by introducing a framework grounded in a consistent definition of the unit cell for discrete dissipative systems. A single-term exponential energy decay coefficient, obtained through least squares minimization of the transient response, is proposed as a robust descriptor of system-level dissipation. The coefficient approximately captures energy decay behavior in both phononic crystals and acoustic metamaterials, offering a more physically meaningful measure than conventional damping metrics. The proposed meta-dissipation framework establishes a critical link between dispersion-based analysis and transient energy dissipation, enabling more effective design and optimization of metamaterials for vibration attenuation across a wide range of engineering applications.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (3)
Arnab Banerjee
Kamal Krishna Bera
Department of Civil Engineering, National Institute of Technology Tiruchirappalli 2 , Tiruchirappalli,
Sondipon Adhikari
James Watt School of Engineering, University of Glasgow 3 , Glasgow,