Mathematics and Numerics for Balance Partial Differential-Algebraic Equations (PDAEs)

Journal Article (2020)
Author(s)

Wanderson Lambert (Alfenas Federal University)

Amaury Alvarez (Universidade Federal do Rio de Janeiro)

Ismael Ledoino (Laboratório Nacional de Computação Científica)

Duilio Tadeu (UFRRJ)

Dan Marchesin (Instituto Nacional de Matemática Pura e Aplicada - IMPA)

Johannes Bruining (TU Delft - Reservoir Engineering)

Research Group
Reservoir Engineering
DOI related publication
https://doi.org/10.1007/s10915-020-01279-w Final published version
More Info
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Publication Year
2020
Language
English
Research Group
Reservoir Engineering
Journal title
Journal of Scientific Computing
Issue number
2
Volume number
84
Article number
29
Downloads counter
184

Abstract

We study systems of partial differential-algebraic equations (PDAEs) of first order. Classical solutions of the theory of hyperbolic partial differential equation such as discontinuities (shock and contact discontinuities), rarefactions and diffusive traveling waves are extended for variables living on a surface S, which is defined as solution of a set of algebraic equations. We propose here an alternative formulation to study numerically and theoretically the PDAEs by changing the algebraic conditions into partial differential equations with relaxation source terms (PDREs). The solution of such relaxed systems is proved to tend to the surface S, i.e., to satisfy the algebraic equations for long times. We formulate a unified numerical scheme for systems of PDAEs and PDREs. This scheme is naturally parallelizable and has faster convergence. We do not perform a rigorous analysis about the convergence or accuracy for the method, the evidence of its effectiveness is presented by means of simulations for physical and synthetical problems.