Neural network based approach for solving problems in plane wave duct acoustics

人工神经网络 边值问题 平面波 声压 质点速度 数学 声波 数学分析 声学 计算机科学 物理 人工智能 光学
作者
D. Veerababu,Prasanta Ghosh
出处
期刊:Journal of Sound and Vibration [Elsevier BV]
卷期号:585: 118476-118476 被引量:1
标识
DOI:10.1016/j.jsv.2024.118476
摘要

Neural networks have emerged as a tool for solving differential equations in many branches of engineering and science. But their progress in frequency domain acoustics is limited by the vanishing gradient problem that occurs at higher frequencies. This paper discusses a formulation that can address this issue. The problem of solving the governing differential equation along with the boundary conditions is posed as an unconstrained optimization problem. The acoustic field is approximated to the output of a neural network which is constructed in such a way that it always satisfies the boundary conditions. The applicability of the formulation is demonstrated on popular problems in plane wave acoustic theory. The predicted solution from the neural network formulation is compared with those obtained from the analytical solution. A good agreement is observed between the two solutions. The method of transfer learning to calculate the particle velocity from the existing acoustic pressure field is demonstrated with and without mean flow effects. The sensitivity of the training process to the choice of the activation function and the number of collocation points is studied.
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