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用于逼近慢不变流形的函数方程截断方法:一种计算本征低维流形的快速方法。

The functional equation truncation method for approximating slow invariant manifolds: a rapid method for computing intrinsic low-dimensional manifolds.

作者信息

Roussel Marc R, Tang Terry

机构信息

Department of Chemistry and Biochemistry, University of Lethbridge, Lethbridge, Alberta T1K 3M4, Canada.

出版信息

J Chem Phys. 2006 Dec 7;125(21):214103. doi: 10.1063/1.2402172.

Abstract

A slow manifold is a low-dimensional invariant manifold to which trajectories nearby are rapidly attracted on the way to the equilibrium point. The exact computation of the slow manifold simplifies the model without sacrificing accuracy on the slow time scales of the system. The Maas-Pope intrinsic low-dimensional manifold (ILDM) [Combust. Flame 88, 239 (1992)] is frequently used as an approximation to the slow manifold. This approximation is based on a linearized analysis of the differential equations and thus neglects curvature. We present here an efficient way to calculate an approximation equivalent to the ILDM. Our method, called functional equation truncation (FET), first develops a hierarchy of functional equations involving higher derivatives which can then be truncated at second-derivative terms to explicitly neglect the curvature. We prove that the ILDM and FET-approximated (FETA) manifolds are identical for the one-dimensional slow manifold of any planar system. In higher-dimensional spaces, the ILDM and FETA manifolds agree to numerical accuracy almost everywhere. Solution of the FET equations is, however, expected to generally be faster than the ILDM method.

摘要

慢流形是一种低维不变流形,附近的轨迹在趋向平衡点的过程中会迅速被吸引到该流形上。慢流形的精确计算在不牺牲系统慢时间尺度精度的情况下简化了模型。马斯 - 波普本征低维流形(ILDM)[《燃烧与火焰》88, 239 (1992)] 经常被用作慢流形的近似。这种近似基于微分方程的线性化分析,因此忽略了曲率。我们在此提出一种计算与ILDM等效近似的有效方法。我们的方法称为泛函方程截断(FET),首先建立一系列涉及高阶导数的泛函方程,然后可以在二阶导数项处截断,以明确忽略曲率。我们证明,对于任何平面系统的一维慢流形,ILDM和FET近似(FETA)流形是相同的。在高维空间中,ILDM和FETA流形在几乎所有地方都在数值精度上一致。然而,预计FET方程的求解通常比ILDM方法更快。

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