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Research Article | Open Access

Cahn-Hilliard Navier-Stokes simulations for marine free-surface flows

Niklas Kühl1( )Michael Hinze2Thomas Rung1
Institute for Fluid Dynamics and Ship Theory, Hamburg University of Technology, Am Schwarzenberg-Campus 4, D-21075 Hamburg, Germany
Department of Mathematics, Universität Koblenz-Landau, Campus Koblenz, Universitätsstrasse 1, D-56070 Koblenz, Germany
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Abstract

The paper is devoted to the simulation of maritime two-phase flows of air and water. Emphasis is put on an extension of the classical Volume-of-Fluid (VoF) method by a diffusive contribution derived from a Cahn-Hilliard (CH) model and its benefits for simulating immiscible, incompressible two-phase flows. Such flows are predominantly simulated with implicit VoF schemes, which mostly employ heuristic downwind-biased approximations for the concentration transport to mimic a sharp interface. This strategy introduces a severe time step restriction and requires pseudo time-stepping of steady flows. Our overall goal is a sound description of the free-surface region that alleviates artificial time-step restrictions, supports an efficient and robust upwind-based approximation framework, and inherently includes surface tension effects when needed. The Cahn-Hilliard Navier-Stokes (CH-NS) system is verified for an analytical Couette-flow example and the bubble formation under the influence of surface tension forces. 2D validation examples are concerned with laminar standing waves reaching from gravity to capillary scale as well as a submerged hydrofoil flow. The final application refers to the 3D flow around an experimentally investigated container vessel at fixed floatation for Re = 1.4 × 107 and Fn = 0.26. Results are compared with data obtained from VoF approaches, supplemented by analytical solutions and measurements. The study indicates the superior efficiency, resharpening capability, and wider predictive realm of the CH-based extension for free-surface flows with a confined spatial range of interface Courant numbers.

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Experimental and Computational Multiphase Flow
Pages 274-290

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Cite this article:
Kühl N, Hinze M, Rung T. Cahn-Hilliard Navier-Stokes simulations for marine free-surface flows. Experimental and Computational Multiphase Flow, 2022, 4(3): 274-290. https://doi.org/10.1007/s42757-020-0101-3

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Received: 11 August 2020
Revised: 24 October 2020
Accepted: 24 November 2020
Published: 06 March 2022
© The Author(s) 2021

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