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DOE OSTI · 2007595

A Conservative Finite-Volume Based Interface-Tracking Algorithm Using the Signed Distance Function

Abstract

Methods for tracking an interface between two fluid phases are developed to ensure desired fluid properties, conservation, and stability are preserved in a finitevolume (FV) discretization. Here, the interface is tracked using a level set method where the signed distance function implicitly defines the interface. Marching methods are used to evaluate the value of the signed distance function, including a novel initialization method to initialize any implicit function to the signed distance function around sharp corners in the level set. Global conservation and consistency with a set of governing equations is enforced by a compression coefficient that measures the volumetric compression or expansion due to inaccuracies in the level set evaluation. A redistribution method is integrated into the volume correction to eliminate the small-cell instability while maintaining global conservation. This suite of methods is implemented and tested using static uniform velocity, and potential flow cases with multiple interface geometries. Results show these methods achieve up to second order accuracy, and are conservative. The application for these methods is intended to track the interface of a 3D printing filament in a finite-volume discretization of the all-speed Navier-Stokes equations.

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BibTeXRIS

Brodin, Erik, Gao, Xinfeng, Colella, Phillip, Weisgraber, Todd, Guzik, Stephen. 2023-04-18. A Conservative Finite-Volume Based Interface-Tracking Algorithm Using the Signed Distance Function. https://www.osti.gov/biblio/2007595

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