Conference Agenda

Overview and details of the sessions of this conference. Please select a date or location to show only sessions at that day or location. Please select a single session for detailed view (with abstracts and downloads if available).

 
 
Session Overview
Session
A26_02: Artificial Intelligence in Turbulence
Time:
Thursday, 19/September/2024:
10:00am - 12:00pm

Session Chair: Andrea Schillaci, RWTH Aachen University
Location: H07

C.A.R.L.-Central Auditorium for Research and Learning Claßenstr. 11 52072 Aachen

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Presentations
10:00am - 10:15am

Reconstructing temperature fields in S-Duct based on pressure measurements using physics-informed neural networks

Jian Teng1, Yiqing Li2

1School of Naval Architecture and Ocean Engineering, Guangzhou Maritime University; 2School of Aircraft Engineering, Nanchang Hangkong University

Teng-Reconstructing temperature fields in S-Duct based-191.pdf


10:15am - 10:30am

Spectral adjoint-based assimilation of sparse data for augmented unsteady simulations of turbulent flows

Justin Plogmann1,2, Oliver Brenner1, Patrick Jenny1

1Institute of Fluid Dynamics, ETH Zurich, Sonneggstrasse3, CH-8092, Zürich, Switzerland; 2Automotive Powertrain Technologies Laboratory, Swiss Federal Laboratories for Materials Science and Technology (Empa), Überlandstrasse 129, CH-8600, Dübendorf, Switzerland

Plogmann-Spectral adjoint-based assimilation of sparse data-708.pdf


10:30am - 10:45am

Subgrid-scale modeling of stratified turbulence using a constrained artificial neural network

Daisuke Nishiyama1, Yuji Hattori2

1Graduate School of Information Sciences, Tohoku University; 2Institute of Fluid Science, Tohoku University

Nishiyama-Subgrid-scale modeling of stratified turbulence using a constrained artificial-721.pdf


10:45am - 11:00am

Temporal forecasting of turbulent Rayleigh-Bénard convection using echo state networks

Mohammad Sharifi Ghazijahani, Christian Cierpka

Institute of Thermodynamics and Fluid Mechanics, Technische Universitat Ilmenau

Sharifi Ghazijahani-Temporal forecasting of turbulent Rayleigh-Bénard convection using echo state-759.pdf


11:00am - 11:15am

Using the ZPG-TBL DNS data to benchmark the performance of Physics Informed Neural Network (PINN) for heat transfer modelling

Aakhash Sundaresan1,2, Julio Soria2, Atul Srivastava3, Callum Atkinson2

1IITB Monash Research Academy, Indian Institute of Technology Bombay, Mumbai, Maharashtra - 400 076, India; 2Laboratory of Turbulence Research in Aerospace and Combustion, Department of Mechanical and Aerospace Engineering, Monash University, Clayton, VIC-3800, Melbourne, Australia; 3Department of Mechanical Engineering, Indian Institute of Technology, Bombay, India - 400 076

Sundaresan-Using the ZPG-TBL DNS data to benchmark the performance-1303.pdf


11:15am - 11:30am

Learning the dynamics of symmetry-reduced chaotic attractors in fluid dynamics from data

Simon Kneer, Nazmi Burak Budanur

Max Planck Institute for the Physics of Complex Systems

Kneer-Learning the dynamics of symmetry-reduced chaotic attractors-1286.pdf


 
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