Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/137126
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Type: Journal article
Title: Lorenz-like systems emerging from an integro-differential trajectory equation of a one-dimensional wave–particle entity
Author: Valani, R.N.
Citation: Chaos: an interdisciplinary journal of nonlinear science, 2022; 32(2):023129-1-023129-13
Publisher: AIP Publishing
Issue Date: 2022
ISSN: 1054-1500
1089-7682
Statement of
Responsibility: 
Rahil N. Valani
Abstract: Vertically vibrating a liquid bath can give rise to a self-propelled wave–particle entity on its free surface. The horizontal walking dynamics of this wave–particle entity can be described adequately by an integro-differential trajectory equation. By transforming this integro-differential equation of motion for a one-dimensional wave–particle entity into a system of ordinary differential equations (ODEs), we show the emergence of Lorenz-like dynamical systems for various spatial wave forms of the entity. Specifically, we present and give examples of Lorenz-like dynamical systems that emerge when the wave form gradient is (i) a solution of a linear homogeneous constant coefficient ODE, (ii) a polynomial, and (iii) a periodic function. Understanding the dynamics of the wave–particle entity in terms of Lorenz-like systems may prove to be useful in rationalizing emergent statistical behavior from underlying chaotic dynamics in hydrodynamic quantum analogs of walking droplets. Moreover, the results presented here provide an alternative physical interpretation of various Lorenz-like dynamical systems in terms of the walking dynamics of a wave–particle entity.
Rights: © 2022 Author(s). Published under an exclusive license by AIP Publishing.
DOI: 10.1063/5.0076162
Published version: http://dx.doi.org/10.1063/5.0076162
Appears in Collections:Mathematical Sciences publications

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