We present a Reduced Order Model (ROM) which exploits recent developments in Physics Informed Neural Networks (PINNs) for solving inverse problems for the Navier–Stokes equations (NSE). In the proposed approach, the presence of simulated data for the fluid dynamics fields is assumed. A POD-Galerkin ROM is then constructed by applying POD on the snapshots matrices of the fluid fields and performing a Galerkin projection of the NSE (or the modified equations in case of turbulence modeling) onto the POD reduced basis. A POD-Galerkin PINN ROM is then derived by introducing deep neural networks which approximate the reduced outputs with the input being time and/or parameters of the model. The neural networks incorporate the physical equations (the POD-Galerkin reduced equations) into their structure as part of the loss function. Using this approach, the reduced model is able to approximate unknown parameters such as physical constants or the boundary conditions. A demonstration of the applicability of the proposed ROM is illustrated by three cases which are the steady flow around a backward step, the flow around a circular cylinder and the unsteady turbulent flow around a surface mounted cubic obstacle.
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Univ Roma Tor Vergata, Dept Ind Engn, Via Politecn 1, I-00133 Rome, ItalyUniv Roma Tor Vergata, Dept Ind Engn, Via Politecn 1, I-00133 Rome, Italy
Rossi, Riccardo
Gelfusa, Michela
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Univ Roma Tor Vergata, Dept Ind Engn, Via Politecn 1, I-00133 Rome, ItalyUniv Roma Tor Vergata, Dept Ind Engn, Via Politecn 1, I-00133 Rome, Italy
Gelfusa, Michela
Murari, Andrea
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Univ Padua, Consorzio RFX, CNR, ENEA,INFN,Acciaierie Venete SpA, C so Stati Uniti 4, I-35127 Padua, Italy
CNR, Ist Sci & Tecnol Plasmi, Padua, ItalyUniv Roma Tor Vergata, Dept Ind Engn, Via Politecn 1, I-00133 Rome, Italy
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SISSA Int Sch Adv Studies, Math Area, MathLab, Via Bonomea 265, I-34136 Trieste, ItalySISSA Int Sch Adv Studies, Math Area, MathLab, Via Bonomea 265, I-34136 Trieste, Italy
Ballarin, Francesco
Rozza, Gianluigi
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SISSA Int Sch Adv Studies, Math Area, MathLab, Via Bonomea 265, I-34136 Trieste, ItalySISSA Int Sch Adv Studies, Math Area, MathLab, Via Bonomea 265, I-34136 Trieste, Italy
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Consiglio Nazionale delle Ricerche, Istituto di Ricerca Sulle Acque, Bari, ItalyConsiglio Nazionale delle Ricerche, Istituto di Ricerca Sulle Acque, Bari, Italy
Berardi, Marco
Difonzo, Fabio V.
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Department of Engineering, LUM University Giuseppe Degennaro, S.S. 100 km 18, Casamassima (BA),70010, Italy
Consiglio Nazionale delle Ricerche, Istituto per le Applicazioni del Calcolo Mauro Picone, Bari, ItalyConsiglio Nazionale delle Ricerche, Istituto di Ricerca Sulle Acque, Bari, Italy
Difonzo, Fabio V.
Icardi, Matteo
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School of Mathematical Sciences, University of Nottingham, Nottingham, United KingdomConsiglio Nazionale delle Ricerche, Istituto di Ricerca Sulle Acque, Bari, Italy
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Politecn Milan, Dipartimento Matemat, MOX Modeling & Sci Comp, I-20133 Milan, ItalyPolitecn Milan, Dipartimento Matemat, MOX Modeling & Sci Comp, I-20133 Milan, Italy
Ballarin, Francesco
Manzoni, Andrea
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Scuola Int Super Studi Avanzati, SISSA MathLab, I-34136 Trieste, ItalyPolitecn Milan, Dipartimento Matemat, MOX Modeling & Sci Comp, I-20133 Milan, Italy
Manzoni, Andrea
Quarteroni, Alfio
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Politecn Milan, Dipartimento Matemat, MOX Modeling & Sci Comp, I-20133 Milan, Italy
Ecole Polytech Fed Lausanne, CMCS Modelling & Sci Comp, CH-1015 Lausanne, SwitzerlandPolitecn Milan, Dipartimento Matemat, MOX Modeling & Sci Comp, I-20133 Milan, Italy
Quarteroni, Alfio
Rozza, Gianluigi
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Scuola Int Super Studi Avanzati, SISSA MathLab, I-34136 Trieste, ItalyPolitecn Milan, Dipartimento Matemat, MOX Modeling & Sci Comp, I-20133 Milan, Italy