Chance‐constrained model predictive control a reformulated approach suitable for sewer networks
Autor: | Hans Henrik Niemann, Jan Lorenz Svensen, Niels Kjølstad Poulsen, Anne Katrine Vinther Falk |
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Rok vydání: | 2021 |
Předmět: |
Mathematical optimization
Chance-constrained Computer science Computation Combined sewer overflow Context (language use) Systems and Control (eess.SY) General Medicine Stochastic MPC Electrical Engineering and Systems Science - Systems and Control Astlingen sewer network Model predictive control FOS: Electrical engineering electronic engineering information engineering Benchmark (computing) 93B45 93E20 Operational behavior Focus (optics) |
Zdroj: | Svensen, J L, Niemann, H H, Falk, A K V & Poulsen, N K 2021, ' Chance-constrained model predictive control : a reformulated approach suitable for sewer networks ', Advanced Control for Applications: Engineering and Industrial Systems, vol. 3, no. 4, e94 . https://doi.org/10.1002/adc2.94 |
ISSN: | 2578-0727 |
DOI: | 10.1002/adc2.94 |
Popis: | In this work, a revised formulation of Chance-Constrained (CC) Model Predictive Control (MPC) is presented. The focus of this work is on the mathematical formulation of the revised CC-MPC, and the reason behind the need for its revision. The revised formulation is given in the context of sewer systems, and their weir overflow structures. A linear sewer model of the Astlingen Benchmark sewer model is utilized to illustrate the application of the formulation, both mathematically and performance-wise through simulations. Based on the simulations, a comparison of performance is done between the revised CC-MPC and a comparable deterministic MPC, with a focus on overflow avoidance, computation time, and operational behavior. The simulations show similar performance for overflow avoidance for both types of MPC, while the computation time increases slightly for the CC-MPC, together with operational behaviors getting limited 14 pages, 13 figures, 2 tables, submitted to journal of Advanced Control and Application, july 2020 |
Databáze: | OpenAIRE |
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