Institut für Mathematik, Carl-von-Ossietzky Universität, Oldenburg, Germany.
Institut für Audiologie und Hörtechnik, Jade-Hochschule, Oldenburg, Germany.
J Acoust Soc Am. 2023 May 1;153(5):2826. doi: 10.1121/10.0019378.
Knowledge of the sound pressure transfer to the eardrum is important. The transfer is highly influenced by the shape of the ear canal and its acoustic properties, such as the acoustic impedance at the eardrum. Invasive procedures to measure the sound pressure at the eardrum are usually elaborate or costly. We propose a numerical method to estimate the transfer impedance of the ear canal given only input impedance measurements at the ear canal entrance, by using one-dimensional first-order finite elements and Nelder-Mead optimization algorithm. Estimations on the area function of the ear canal and the acoustic impedance at the eardrum are achieved. Results are validated through numerical simulations on ten different ear canal geometries and three different acoustic impedances at the eardrum, using synthetically generated data from three-dimensional finite element simulations.
了解声压传递到鼓膜的情况非常重要。这种传递受到耳道形状及其声学特性(如鼓膜处的声阻抗)的极大影响。测量鼓膜处声压的侵入性程序通常很复杂或成本很高。我们提出了一种数值方法,仅通过在耳道入口处进行输入阻抗测量,就可以使用一维一阶有限元法和 Nelder-Mead 优化算法来估计耳道的传递阻抗。我们还实现了对耳道面积函数和声阻抗的估计。通过对十种不同耳道几何形状和三种不同鼓膜处声阻抗的数值模拟,使用三维有限元模拟生成的合成数据对结果进行了验证。