A Robust Predictive Control Method for Pump Scheduling in Water Distribution Networks

Fuente: arXiv
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Autori principali: Ürkmez, Mirhan, Kallesøe, Carsten, Bendtsen, Jan Dimon, Kerrigan, Eric C., Leth, John
Natura: Preprint
Pubblicazione: 2025
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author Ürkmez, Mirhan
Kallesøe, Carsten
Bendtsen, Jan Dimon
Kerrigan, Eric C.
Leth, John
author_facet Ürkmez, Mirhan
Kallesøe, Carsten
Bendtsen, Jan Dimon
Kerrigan, Eric C.
Leth, John
contents Water utilities aim to reduce the high electrical costs of Water Distribution Networks (WDNs), primarily driven by pumping. However, pump scheduling is challenging due to model uncertainties and water demand forecast errors. This paper presents a Robust Model Predictive Control (RMPC) method for optimal and reliable pump scheduling, extending a previous efficient robust control method tailored to our model. A linear model with bounded additive disturbances is used to represent tank water level evolution, with uncertainty bounds derived from WDN simulation and demand data. At each time step, a pump scheduling policy, affine in past disturbances, is optimized to satisfy system constraints over a prediction horizon. The resulting policies are then applied in a receding horizon fashion. The optimization problem is formulated to require $\mathcal{O}(N^6)$ computations per iteration with an interior-point method, which is reduced to $\mathcal{O}(N^3)$ by reformulating it into a sparse form. When evaluated on a model representing the water distribution network of Randers, a medium-sized town in Denmark, the method surpasses nominal and constraint-tightening model predictive control (MPC) approaches in terms of meeting constraints and provides comparable economic outcomes.
format Preprint
id arxiv_https___arxiv_org_abs_2507_18492
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Robust Predictive Control Method for Pump Scheduling in Water Distribution Networks
Ürkmez, Mirhan
Kallesøe, Carsten
Bendtsen, Jan Dimon
Kerrigan, Eric C.
Leth, John
Systems and Control
Water utilities aim to reduce the high electrical costs of Water Distribution Networks (WDNs), primarily driven by pumping. However, pump scheduling is challenging due to model uncertainties and water demand forecast errors. This paper presents a Robust Model Predictive Control (RMPC) method for optimal and reliable pump scheduling, extending a previous efficient robust control method tailored to our model. A linear model with bounded additive disturbances is used to represent tank water level evolution, with uncertainty bounds derived from WDN simulation and demand data. At each time step, a pump scheduling policy, affine in past disturbances, is optimized to satisfy system constraints over a prediction horizon. The resulting policies are then applied in a receding horizon fashion. The optimization problem is formulated to require $\mathcal{O}(N^6)$ computations per iteration with an interior-point method, which is reduced to $\mathcal{O}(N^3)$ by reformulating it into a sparse form. When evaluated on a model representing the water distribution network of Randers, a medium-sized town in Denmark, the method surpasses nominal and constraint-tightening model predictive control (MPC) approaches in terms of meeting constraints and provides comparable economic outcomes.
title A Robust Predictive Control Method for Pump Scheduling in Water Distribution Networks
topic Systems and Control
url https://arxiv.org/abs/2507.18492