Physically sound, self-learning digital twins for sloshing fluids

Moya, Beatriz (Universidad de Zaragoza) ; Alfaro, Iciar (Universidad de Zaragoza) ; Gonzalez, David (Universidad de Zaragoza) ; Chinesta, Francisco ; Cueto, Elías (Universidad de Zaragoza)
Physically sound, self-learning digital twins for sloshing fluids
Resumen: In this paper, a novel self-learning digital twin strategy is developed for fluid sloshing phenomena. This class of problems is of utmost importance for robotic manipulation of fluids, for instance, or, in general, in simulation-assisted decision making. The proposed method infers the (linear or non-linear) constitutive behavior of the fluid from video sequences of the sloshing phenomena. Real-time prediction of the fluid response is obtained from a reduced order model (ROM) constructed by means of thermodynamics-informed data-driven learning. From these data, we aim to predict the future response of a twin fluid reacting to the movement of the real container. The constructed system is able to perform accurate forecasts of its future reactions to the movements of the containers. The system is completed with augmented reality techniques, so as to enable comparisons among the predicted result with the actual response of the same liquid and to provide the user with insightful information about the physics taking place.
Idioma: Inglés
DOI: 10.1371/journal.pone.0234569
Año: 2020
Publicado en: PloS one 15, 6 (2020), e0234569 1-16
ISSN: 1932-6203

Factor impacto JCR: 3.24 (2020)
Categ. JCR: MULTIDISCIPLINARY SCIENCES rank: 26 / 73 = 0.356 (2020) - Q2 - T2
Factor impacto SCIMAGO: 0.99 - Multidisciplinary (Q1)

Financiación: info:eu-repo/grantAgreement/ES/DGA/T88
Financiación: info:eu-repo/grantAgreement/ES/MINECO/DPI2017-85139-C2-1-R
Tipo y forma: Article (Published version)
Área (Departamento): Área Mec.Med.Cont. y Teor.Est. (Dpto. Ingeniería Mecánica)
Exportado de SIDERAL (2021-09-02-09:43:28)


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 Notice créée le 2020-09-04, modifiée le 2021-09-02


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