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Chapter

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Title

Reduced-order modeling in the fluidic pinball

Authors

[ 1 ] Katedra Inżynierii Wirtualnej, Wydział Inżynierii Transportu, Politechnika Poznańska | [ P ] employee

Scientific discipline (Law 2.0)

[2.9] Mechanical engineering

Year of publication

2019

Chapter type

chapter in monograph / paper

Publication language

english

Keywords
EN
  • fluid mechanics
  • flow control
  • reduced-order modeling transition to chaos
Abstract

EN The fluidic pinball is a geometrically simple wake flow configuration with three rotating cylinders on the vertex of an equilateral triangle. Yet, it remains physically rich enough to host a range of interacting frequencies and to allow testing of control laws within minutes on a laptop. The system has multiple inputs (the three cylinders can independently rotate around their axis) and multiple outputs (downstream velocity sensors). Investigating the natural flow dynamics, we found that the first unsteady transition undergone by the wake flow, when increasing the Reynolds number, is a Hopf bifurcation leading to the usual time-periodic vortex shedding phenomenon, typical of cylinder wake flows, in which the mean flow field preserves axial symmetry. We extract dynamically consistent modes from the flow data in order to built a reduced-order model (ROM) of this flow regime. We show that the main dynamical features of the primary Hopf bifurcation can be described by a non-trivial lowest-order model made of three degrees of freedom.

Pages (from - to)

205 - 213

DOI

10.1007/978-3-030-15297-0_19

URL

https://link.springer.com/chapter/10.1007/978-3-030-15297-0_19

Book

11th Chaotic Modeling and Simulation International Conference

Presented on

11th Chaotic Modeling and Simulation International Conference : CHAOS, 5-8.06.2018, Rome, Italy

Ministry points / chapter

20

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