Periodic Orbit Dividing Surfaces in a Quartic Hamiltonian System with Three Degrees of Freedom – II

F. Montoya, M. Katsanikas, Stephen Wiggins
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Abstract

In prior studies [Katsanikas & Wiggins, 2021a, 2021b, 2023a, 2023b], we introduced two methodologies for constructing Periodic Orbit Dividing Surfaces (PODS) tailored specifically for Hamiltonian systems with three or more degrees of freedom. These approaches, as described in the aforementioned papers, were applied to a quadratic Hamiltonian system in its normal form with three degrees of freedom. Within this framework, we provide a more intricate geometric characterization of this entity within the family of 4D toratopes which elucidates the structure of the dividing surfaces discussed in these works. Our analysis affirmed the nature of this construction as a dividing surface with the property of no-recrossing. These insights were derived from analytical findings tailored to the Hamiltonian system discussed in these publications. In this series of papers, we extend our previous findings to quartic Hamiltonian systems with three degrees of freedom. We establish the no-recrossing property of the PODS for this class of Hamiltonian systems and explore their structural aspects. Additionally, we undertake the computation and examination of the PODS in a coupled scenario of quartic Hamiltonian systems with three degrees of freedom. In the initial paper [Gonzalez Montoya et al., 2024], we employed the first methodology for constructing PODS, while in this paper, we utilize the second methodology for the same purpose.
具有三个自由度的四元哈密顿系统中的周期轨道分割面 - II
在之前的研究[Katsanikas & Wiggins, 2021a, 2021b, 2023a, 2023b]中,我们介绍了两种专门为具有三个或更多自由度的哈密顿系统定制的构建周期轨道分割面(PODS)的方法。如上述论文所述,这些方法被应用于具有三个自由度的正态二次哈密顿系统。在这一框架内,我们对 4D toratopes 家族中的这一实体进行了更复杂的几何表征,阐明了这些著作中讨论的分割面的结构。我们的分析确认了这一结构作为具有无交叉特性的分割面的性质。这些见解来自于针对这些著作中讨论的哈密尔顿系统的分析结果。在本系列论文中,我们将之前的发现扩展到具有三个自由度的四元哈密顿系统。我们为这类哈密尔顿系统建立了 PODS 的无交叉特性,并探讨了它们的结构方面。此外,我们还在具有三个自由度的四元哈密顿系统的耦合情景中对 PODS 进行了计算和检验。在最初的论文[Gonzalez Montoya 等人,2024]中,我们采用了第一种方法来构建 PODS,而在本文中,我们采用了第二种方法来实现同样的目的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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