An immersed boundary method for fluid-structure interaction based on overlapping domain decomposition
Maria Giuseppina Chiara Nestola, Barna Becsek, Hadi Zolfaghari,, Patrick Zulian, Dario De Marinis, Rolf Krause, Dominik Obrist

TL;DR
This paper introduces a novel fluid-structure interaction framework combining elastodynamics, high-order Navier-Stokes, and variational coupling, enabling accurate simulations of complex structures in turbulent flows.
Contribution
It presents a new immersed boundary method using elastodynamics and high-order flow solvers with variational coupling for large-scale, complex fluid-structure interaction problems.
Findings
Validated with benchmark problems including flow-induced oscillation.
Capable of simulating elastic structures in transitional flow.
Demonstrated effectiveness in 3D complex fluid-structure interactions.
Abstract
We present a novel framework inspired by the Immersed Boundary Method for predicting the fluid-structure interaction of complex structures immersed in flows with moderate to high Reynolds numbers. The main novelties of the proposed fluid-structure interaction framework are 1) the use of elastodynamics equations for the structure, 2) the use of a high-order Navier-Stokes solver for the flow, and 3) the variational transfer (L2-projection) for coupling the solid and fluid subproblems. The dynamic behavior of a deformable structure is simulated in a finite element framework by adopting a fully implicit scheme for its temporal integration. It allows for mechanical constitutive laws including nonhomogeneous and fiber-reinforced materials. The Navier-Stokes equations for the incompressible flow are discretized with high-order finite differences which allow for the direct numerical simulation…
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Taxonomy
TopicsLattice Boltzmann Simulation Studies · Fluid Dynamics and Vibration Analysis · Vibration and Dynamic Analysis
