Researchers have developed a new deep learning approach for turbulence closure modeling in large eddy simulations (LES). This method uses a nudging technique, treating direct numerical simulation (DNS) data as sparse observations to train the model. This allows for a-priori training of closures, enabling the model to learn necessary forcing for accurate statistics while maintaining long-term stability without requiring backpropagation through the LES solver. AI
影响 Introduces a more stable and computationally efficient method for turbulence closure modeling in simulations.
排序理由 Academic paper detailing a novel deep learning approach for turbulence modeling.
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