Thermodynamic Circuits: Modeling chemical reaction networks with nonequilibrium conductance matrices

Fuente: arXiv
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Main Authors: Raux, Paul, Goupil, Christophe, Verley, Gatien
Format: Preprint
Published: 2024
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author Raux, Paul
Goupil, Christophe
Verley, Gatien
author_facet Raux, Paul
Goupil, Christophe
Verley, Gatien
contents We derive the nonequilibrium conductance matrix for open stationary Chemical Reaction Networks (CRNs) described by a deterministic mass action kinetic equation. As an illustration, we determine the nonequilibrium conductance matrix of a CRN made of two pseudo-linear sub-networks, called chemical modules, in two different ways: First by computing the nonequilibrium conductances of the modules that are then serially connected. Second by computing the nonequilibrium conductance of the CRN directly. The two approaches coincide, as expected from our theory of thermodynamic circuits.
format Preprint
id arxiv_https___arxiv_org_abs_2412_15028
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Thermodynamic Circuits: Modeling chemical reaction networks with nonequilibrium conductance matrices
Raux, Paul
Goupil, Christophe
Verley, Gatien
Statistical Mechanics
Chemical Physics
We derive the nonequilibrium conductance matrix for open stationary Chemical Reaction Networks (CRNs) described by a deterministic mass action kinetic equation. As an illustration, we determine the nonequilibrium conductance matrix of a CRN made of two pseudo-linear sub-networks, called chemical modules, in two different ways: First by computing the nonequilibrium conductances of the modules that are then serially connected. Second by computing the nonequilibrium conductance of the CRN directly. The two approaches coincide, as expected from our theory of thermodynamic circuits.
title Thermodynamic Circuits: Modeling chemical reaction networks with nonequilibrium conductance matrices
topic Statistical Mechanics
Chemical Physics
url https://arxiv.org/abs/2412.15028