Chaotic Behavior of Trapped Cosmic Rays
Vanessa L\'opez-Barquero, Paolo Desiati

TL;DR
This paper introduces a new method using finite-time Lyapunov exponents to analyze the chaotic behavior of cosmic rays in magnetic fields, with implications for understanding their propagation and observed anisotropy.
Contribution
It develops a novel approach to quantify chaos in cosmic ray trajectories and explores how magnetic mirroring and temporal variations influence their behavior.
Findings
Finite-time Lyapunov exponent correlates with particle escape time.
Chaotic effects impact cosmic ray anisotropy maps.
Temporal variability affects observed anisotropy patterns.
Abstract
Recent experimental results on the arrival direction of high-energy cosmic rays have motivated studies to understand their propagating environment. The observed anisotropy is shaped by interstellar and local magnetic fields. In coherent magnetic structures, such as the heliosphere, or due to magnetohydrodynamic turbulence, magnetic mirroring can temporarily trap particles, leading to chaotic behavior. In this work, we develop a new method to characterize cosmic rays' chaotic behavior in magnetic systems using finite-time Lyapunov exponents. This quantity determines the degree of chaos and adapts to transitory behavior. We study particle trajectories in an axial-symmetric magnetic bottle to highlight mirroring effects. By introducing time-dependent magnetic perturbations, we study how temporal variations affect chaotic behavior. We tailor our model to the heliosphere; however, it can…
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Taxonomy
TopicsCosmology and Gravitation Theories · Biofield Effects and Biophysics · Quantum Electrodynamics and Casimir Effect
