The Solution of Potential-Driven, Steady-State Nonlinear Network Flow Equations via Graph Partitioning

Fuente: arXiv
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Main Authors: Srinivasan, Shriram, Sundar, Kaarthik
Format: Preprint
Published: 2025
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author Srinivasan, Shriram
Sundar, Kaarthik
author_facet Srinivasan, Shriram
Sundar, Kaarthik
contents The solution of potential-driven steady-state flow in large networks is required in various engineering applications, such as transport of natural gas or water through pipeline networks. The resultant system of nonlinear equations depends on the network topology, and its solution grows more challenging as the network size increases. We present an algorithm that utilizes a given partition of a network into tractable sizes to compute a global solution for the full nonlinear system through local solution of smaller subsystems induced by the partitions. When the partitions are induced by interconnects or transfer points corresponding to networks owned by different operators, the method ensures data is shared solely at the interconnects, leaving network operators free to solve the network flow system corresponding to their own domain in any manner of their choosing. The proposed method is shown to be connected to the Schur complement and the method's viability demonstrated on some challenging test cases.
format Preprint
id arxiv_https___arxiv_org_abs_2512_22124
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The Solution of Potential-Driven, Steady-State Nonlinear Network Flow Equations via Graph Partitioning
Srinivasan, Shriram
Sundar, Kaarthik
Computational Physics
Optimization and Control
The solution of potential-driven steady-state flow in large networks is required in various engineering applications, such as transport of natural gas or water through pipeline networks. The resultant system of nonlinear equations depends on the network topology, and its solution grows more challenging as the network size increases. We present an algorithm that utilizes a given partition of a network into tractable sizes to compute a global solution for the full nonlinear system through local solution of smaller subsystems induced by the partitions. When the partitions are induced by interconnects or transfer points corresponding to networks owned by different operators, the method ensures data is shared solely at the interconnects, leaving network operators free to solve the network flow system corresponding to their own domain in any manner of their choosing. The proposed method is shown to be connected to the Schur complement and the method's viability demonstrated on some challenging test cases.
title The Solution of Potential-Driven, Steady-State Nonlinear Network Flow Equations via Graph Partitioning
topic Computational Physics
Optimization and Control
url https://arxiv.org/abs/2512.22124