An Energy-Based Lengthscale for Reduced Order Models of Turbulent Flows
Changhong Mou, Elia Merzari, Omer San, Traian Iliescu

TL;DR
This paper introduces a new energy-based lengthscale for reduced order models of turbulent flows, improving stability and robustness over traditional dimensionality-based lengthscales by leveraging energy distribution insights.
Contribution
The paper proposes a novel energy-based ROM lengthscale that outperforms traditional lengthscales in stability, asymptotic behavior, and parameter robustness in turbulent flow simulations.
Findings
Energy-based lengthscale is nearly 100 times larger than dimensionality-based lengthscale.
Energy-based lengthscale results in more stable and robust ROMs.
It exhibits correct asymptotic behavior with respect to ROM dimension.
Abstract
In this paper, we propose a novel reduced order model (ROM) lengthscale that is constructed by using energy distribution arguments. The new energy-based ROM lengthscale is fundamentally different from the current ROM lengthscales, which are built by using dimensional arguments. To assess the novel, energy-based ROM lengthscale, we compare it with a standard, dimensionality-based ROM lengthscale in two fundamentally different types of models: (i) the mixing-length ROM (ML-ROM), which is a ROM closure model; and (ii) the evolve-filter-relax ROM (EFR-ROM), which is a regularized ROM. We test the four combinations (i.e., ML-ROM and EFR-ROM equipped with the energy-based and dimensionality-based lengthscales) in the numerical simulation of the turbulent channel flow at . The numerical investigation yields the following conclusions: (i) The new energy-based ROM lengthscale is…
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Taxonomy
TopicsModel Reduction and Neural Networks · Fractional Differential Equations Solutions · Fluid Dynamics and Vibration Analysis
