Geometric investigation of chaos unfolding in Hamiltonian systems
Year: 2026
Authors: Salasnich L., Sattin F.
Autors Affiliation: Univ Padua, Dipartimento Fis & Astron Galileo Galilei, Via Marzolo 8, I-35131 Padua, Italy; Univ Padua, CNISM, Via Marzolo 8, I-35131 Padua, Italy; CNR, Ist Nazl Ott, Via Nello Carrara 1, I-50125 Sesto Fiorentino, Italy; Ist Nazl Fis Nucl, Sez Padova, Via Marzolo 8, I-35131 Padua, Italy; Univ Padua, ENEA, INFN, Acciaierie Venete SpA,Consorzio RFX CNR, Corso Stati Uniti 4, I-35127 Padua, Italy.
Abstract: In this work we revisit the geometric approach to chaos in Hamiltonian dynamics, by means of the Jacobi-Levi-Civita equation (JLCE). We inspect numerically two low-dimensional dynamical systems; show that, along chaotic orbits, the exponential divergence between nearby trajectories quantified by the JLCE does not unfold in a continuous manner, rather is closer to a multiplicative discrete process: in correspondence of each turning point, where the trajectory bounces away from the boundary of the energetically allowed region, the relative separation increases sharply and abruptly. We highlight through analytical and numerical arguments that the chaotic rather than regular nature of the trajectory is determined by the details of the scattering with the boundary, and interpret these results in terms of parametric resonance theory, and specifically the Mathieu equation.
Journal/Review: CHAOS SOLITONS & FRACTALS
Volume: 208 Pages from: 118259-1 to: 118259-9
KeyWords: Hamiltonian systems; Chaos; Integrability; Riemannian manifolds; Jacobi-Levi-Civita equation; Parametric resonance; Floquet theory; Mathieu equationDOI: 10.1016/j.chaos.2026.118259

