Irreversible Port-Hamiltonian Formulations for 1-Dimensional fluid systems

Fuente: arXiv
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Auteurs principaux: Ouardi, Ahlam, Sarkar, Arijit, Ramirez, Hector, Gorrec, Yann Le
Format: Preprint
Publié: 2026
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author Ouardi, Ahlam
Sarkar, Arijit
Ramirez, Hector
Gorrec, Yann Le
author_facet Ouardi, Ahlam
Sarkar, Arijit
Ramirez, Hector
Gorrec, Yann Le
contents The Irreversible Port-Hamiltonian Systems (IPHS) framework is extended to the modelling of non-isentropic fluids with viscous dissipation in the Eulerian description. Building on earlier IPHS formulations for diffusion-driven and non-convective distributed systems, it is shown that convective transport can be consistently encompassed by the framework by modifying the underlying differential operators. After revisiting the constitutive relations of non-isentropic fluids in both Eulerian and Lagrangian coordinates, it is demonstrate how these systems fit within an extended IPHS formulation. Furthermore, an extended parametrisation of the boundary port variables which ensures that the first and second laws of Thermodynamics are fulfilled allows to define a general class of boundary controlled IPHS.
format Preprint
id arxiv_https___arxiv_org_abs_2603_11260
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Irreversible Port-Hamiltonian Formulations for 1-Dimensional fluid systems
Ouardi, Ahlam
Sarkar, Arijit
Ramirez, Hector
Gorrec, Yann Le
Fluid Dynamics
Systems and Control
The Irreversible Port-Hamiltonian Systems (IPHS) framework is extended to the modelling of non-isentropic fluids with viscous dissipation in the Eulerian description. Building on earlier IPHS formulations for diffusion-driven and non-convective distributed systems, it is shown that convective transport can be consistently encompassed by the framework by modifying the underlying differential operators. After revisiting the constitutive relations of non-isentropic fluids in both Eulerian and Lagrangian coordinates, it is demonstrate how these systems fit within an extended IPHS formulation. Furthermore, an extended parametrisation of the boundary port variables which ensures that the first and second laws of Thermodynamics are fulfilled allows to define a general class of boundary controlled IPHS.
title Irreversible Port-Hamiltonian Formulations for 1-Dimensional fluid systems
topic Fluid Dynamics
Systems and Control
url https://arxiv.org/abs/2603.11260