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Finite-Element Modelling of the Acoustic Input Admittance of the Newborn Ear Canal and Middle Ear

机译:新生儿耳道和中耳声输入导纳的有限元模拟

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摘要

Admittance measurement is a promising tool for evaluating the status of the middle ear in newborns. However, the newborn ear is anatomically very different from the adult one, and the acoustic input admittance is different than in adults. To aid in understanding the differences, a finite-element model of the newborn ear canal and middle ear was developed and its behaviour was studied for frequencies up to 2000 Hz. Material properties were taken from previous measurements and estimates. The simulation results were within the range of clinical admittance measurements made in newborns. Sensitivity analyses of the material properties show that in the canal model, the maximum admittance and the frequency at which that maximum admittance occurs are affected mainly by the stiffness parameter; in the middle-ear model, the damping is as important as the stiffness in influencing the maximum admittance magnitude but its effect on the corresponding frequency is negligible. Scaling up the geometries increases the admittance magnitude and shifts the resonances to lower frequencies. The results suggest that admittance measurements can provide more information about the condition of the middle ear when made at multiple frequencies around its resonance.
机译:导纳测量是评估新生儿中耳状况的有前途的工具。然而,新生儿的耳朵在解剖学上与成年的耳朵有很大的不同,并且声学输入导纳与成年的耳朵不同。为了帮助理解差异,开发了新生儿耳道和中耳的有限元模型,并研究了其行为在高达2000 Hz的频率下的行为。材料特性取自先前的测量和估计。模拟结果在新生儿的临床导纳测量范围内。材料特性的敏感性分析表明,在渠道模型中,最大导纳和最大导纳出现的频率主要受刚度参数的影响。在中耳模型中,在影响最大导纳幅度时,阻尼与刚度同等重要,但其对相应频率的影响可以忽略不计。扩大几何尺寸可增加导纳幅度,并将谐振移至较低频率。结果表明,当在中耳周围的多个频率处进行中导率测量时,导纳测量可以提供有关中耳状况的更多信息。

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