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Acoustic-structural coupled finite element analysis for sound transmission in human ear--pressure distributions.

机译:声-声耦合在人耳-压力分布中的声学-结构耦合有限元分析。

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摘要

A three-dimensional (3D) finite element (FE) model of human ear with accurate structural geometry of the external ear canal, tympanic membrane (TM), ossicles, middle ear suspensory ligaments, and middle ear cavity has been recently reported by our group. In present study, this 3D FE model was modified to include acoustic-structural interfaces for coupled analysis from the ear canal through the TM to middle ear cavity. Pressure distributions in the canal and middle ear cavity at different frequencies were computed under input sound pressure applied at different locations in the canal. The spectral distributions of middle ear pressure at the oval window, round window, and medial site of the umbo were calculated and the results demonstrated that there was no significant difference of pressures between those locations at frequency below 3.5 kHz. Finally, the influence of TM perforation on pressure distributions in the canal and middle ear cavity was investigated for perforations in the inferior-posterior and inferior sites of the TM in the FE model and human temporal bones. The results show that variation of middle ear pressure is related to the perforation type and location, and is sensitive to frequency.
机译:我们的小组最近报告了人耳的三维(3D)有限元(FE)模型,该模型具有准确的外耳道,鼓膜(TM),小骨,中耳悬韧带和中耳腔的结构几何形状。在本研究中,对该3D FE模型进行了修改,使其包含了声学结构界面,用于从耳道通过TM到中耳腔的耦合分析。在施加于耳道不同位置的输入声压下,计算出不同频率的耳道和中耳腔内的压力分布。计算了椭圆形窗口,圆形窗口和鼓膜内侧部位中耳压力的频谱分布,结果表明,在低于3.5 kHz的频率下,这些位置之间的压力没有显着差异。最后,研究了有限元模型和人颞骨中TM的上下,下部位置的穿孔对TM穿孔对耳道和中耳腔压力分布的影响。结果表明,中耳压的变化与穿孔的类型和位置有关,并且对频率敏感。

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