Abstract:
In chemical reactions, trajectories typically turn from reactants to products when crossing a dividing surface close to the normally hyperbolic invariant manifold (NHIM) given by the intersection of the stable and unstable manifolds of a rank-1 saddle. Trajectories started exactly on the NHIM in principle never leave this manifold when propagated forward or backward in time. This still holds for driven systems when the NHIM itself becomes timedependent. We investigate the dynamics on the NHIM for a periodically driven model system with two degrees of freedom by numerically stabilizing the motion. Using Poincaré surfaces of section, we demonstrate the occurrence of structural changes of the dynamics, viz., bifurcations of periodic transition state (TS) trajectories when changing the amplitude and frequency of the external driving. In particular, periodic TS trajectories with the same period as the external driving but significantly different parameters — such as mean energy — compared to the ordinary TS trajectory can be created in a saddle-node bifurcation.
Citation:
Manuel Kuchelmeister, Johannes Reiff, Jörg Main, Rigoberto Hernandez, “Dynamics and Bifurcations on the Normally Hyperbolic Invariant Manifold of a Periodically Driven System with Rank-1 Saddle”, Regul. Chaotic Dyn., 25:5 (2020), 496–507
\Bibitem{KucReiMai20}
\by Manuel Kuchelmeister, Johannes Reiff, J\"org Main, Rigoberto Hernandez
\paper Dynamics and Bifurcations on the Normally Hyperbolic Invariant Manifold of a Periodically Driven System with Rank-1 Saddle
\jour Regul. Chaotic Dyn.
\yr 2020
\vol 25
\issue 5
\pages 496--507
\mathnet{http://mi.mathnet.ru/rcd1079}
\crossref{https://doi.org/10.1134/S1560354720050068}
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Linking options:
https://www.mathnet.ru/eng/rcd1079
https://www.mathnet.ru/eng/rcd/v25/i5/p496
This publication is cited in the following 3 articles:
Yu. Nagahata, R. Hernandez, T. Komatsuzaki, “Phase space geometry of isolated to condensed chemical reactions”, J. Chem. Phys., 155:21 (2021), 210901
Johannes Reiff, Robin Bardakcioglu, Matthias Feldmaier, Jörg Main, Rigoberto Hernandez, “Controlling reaction dynamics in chemical model systems through external driving”, Physica D: Nonlinear Phenomena, 427 (2021), 133013
Bardakcioglu R., Reiff J., Feldmaier M., Main J., Hernandez R., “Thermal Decay Rates of An Activated Complex in a Driven Model Chemical Reaction”, Phys. Rev. E, 102:6 (2020), 062204