Nonlinear proper orthogonal decomposition for convection-dominated flows

被引:24
|
作者
Ahmed, Shady E. [1 ]
San, Omer [1 ]
Rasheed, Adil [2 ,3 ]
Iliescu, Traian [4 ]
机构
[1] Oklahoma State Univ, Sch Mech & Aerosp Engn, Stillwater, OK 74078 USA
[2] Norwegian Univ Sci & Technol, Dept Engn Cybernet, N-7465 Trondheim, Norway
[3] SINTEF Digital, Dept Math & Cybernet, N-7034 Trondheim, Norway
[4] Virginia Tech, Dept Math, Blacksburg, VA 24061 USA
基金
美国国家科学基金会;
关键词
PRINCIPAL COMPONENT ANALYSIS; NEURAL-NETWORKS; DYNAMICS; PHYSICS;
D O I
10.1063/5.0074310
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Autoencoder techniques find increasingly common use in reduced order modeling as a means to create a latent space. This reduced order representation offers a modular data-driven modeling approach for nonlinear dynamical systems when integrated with a time series predictive model. In this Letter, we put forth a nonlinear proper orthogonal decomposition (POD) framework, which is an end-to-end Galerkin-free model combining autoencoders with long short-term memory networks for dynamics. By eliminating the projection error due to the truncation of Galerkin models, a key enabler of the proposed nonintrusive approach is the kinematic construction of a nonlinear mapping between the full-rank expansion of the POD coefficients and the latent space where the dynamics evolve. We test our framework for model reduction of a convection-dominated system, which is generally challenging for reduced order models. Our approach not only improves the accuracy, but also significantly reduces the computational cost of training and testing. Published under an exclusive license by AIP Publishing.
引用
收藏
页数:8
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