Intrusive deconvolutional neural networks for enhancing PIC/FLIP solutions
Abstract
Traditional fluid flow predictions require large computational resources. Despite recent progress in parallel and GPU computing, the ability to run fluid flow predictions in real-time is often infeasible. Recently developed machine learning approaches, which are trained on high-fidelity data, perform unsatisfactorily outside the training set and remove the ability of utilising legacy codes after training. We propose a novel methodology that uses a deep learning approach that can be used within a low-fidelity fluid flow solver to significantly increase the accuracy of the low-fidelity simulations. The resulting solver enables accurate while reducing computational times up to 100 times. The deep neural network is trained on a combination of low- and high-fidelity data, and the resulting solver is referred to as a multi-fidelity solver. The proposed methodology is demonstrated by means of enhancing a fluid flow simulator, known as PIC/FLIP, which is a popular fluid flow simulator in the field of computer generated imagery.
Cite
@article{arxiv.2106.03491,
title = {Intrusive deconvolutional neural networks for enhancing PIC/FLIP solutions},
author = {Y. van Halder and B. Sanderse and B. Koren},
journal= {arXiv preprint arXiv:2106.03491},
year = {2021}
}