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In the other regions with higher grid resolution an LES model is applied.
The new LES model is tested against experimental data, showing very good agreement.
Large Eddy Simulation (LES) model is adopted to solve for time varying pressure and velocity fields.
The LES model is shown to reproduce the pattern observed in full-scale.
Three-dimensional version of the LES model is under development to simulate pressure effects and identify design solutions, including mitigating techniques, for hydrogen safety engineering.
In this work, an integrated Large Eddy Simulation (LES) model is developed for sooting turbulent nonpremixed flames and validated in a laboratory scale flame.
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To improve the performance of an LE-DMFC, a mathematical model is developed to optimize the thicknesses of both the LE layer and the Nafion membrane.
Having the majority of data points in the ranges of ( 0 le H le 0.055 ) and ( - 3 le R le 3 ) reveals that the LS-SVM model is convincing and reliable in terms of statistical criteria.
The latter model is exactly what Letouzey is trying to do with Le Fontenoy.
This model is confirmed by lT ∼ 33 Å < 2 × lE obtained for 18 wt % A6H in water (Table S1).
Owing to its good performance, the 1-Eqn-SGS-TKE-LES model is then extended to study the multiphase liquid liquid system, where experimental torque measurement has been used for the model validation.
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