Inductive intrinsic localized modes in a one-dimensional nonlinear electric transmission line.

Phys Rev E

Laboratory of Atomic and Solid State Physics, Cornell University, Ithaca, New York 14853-2501, USA.

Published: July 2016

AI Article Synopsis

  • The study explores intrinsic localized modes (ILMs) in a one-dimensional electrical transmission line with a nonlinear inductive component, revealing a new type of ILM not found in typical wave spectra.
  • To aid analysis, the nonlinear inductive equations are reformulated into flux transmission line equations, allowing for approximate analytical solutions that align well with driven damped lattice models and eigenvalue simulations.
  • The findings indicate that ILMs can be spatially compressed, demonstrating a relationship between mass and force constant defects in harmonic lattices and ILMs in stronger anharmonic environments.

Article Abstract

The experimental properties of intrinsic localized modes (ILMs) have long been compared with theoretical dynamical lattice models that make use of nonlinear onsite and/or nearest-neighbor intersite potentials. Here it is shown for a one-dimensional lumped electrical transmission line that a nonlinear inductive component in an otherwise linear parallel capacitor lattice makes possible a new kind of ILM outside the plane wave spectrum. To simplify the analysis, the nonlinear inductive current equations are transformed to flux transmission line equations with analog onsite hard potential nonlinearities. Approximate analytic results compare favorably with those obtained from a driven damped lattice model and with eigenvalue simulations. For this mono-element lattice, ILMs above the top of the plane wave spectrum are the result. We find that the current ILM is spatially compressed relative to the corresponding flux ILM. Finally, this study makes the connection between the dynamics of mass and force constant defects in the harmonic lattice and ILMs in a strongly anharmonic lattice.

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Source
http://dx.doi.org/10.1103/PhysRevE.94.012223DOI Listing

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