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首页> 外文期刊>The Journal of the Acoustical Society of America >The effects of varying tympanic-membrane material properties on human middle-ear sound transmission in a three-dimensional finite-element model
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The effects of varying tympanic-membrane material properties on human middle-ear sound transmission in a three-dimensional finite-element model

机译:不同鼓膜 - 膜材料特性对三维有限元模型人中耳声传动的影响

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摘要

An anatomically based three-dimensional finite-element human middle-ear (ME) model is used to test the sensitivity of ME sound transmission to tympanic-membrane (TM) material properties. The baseline properties produce responses comparable to published measurements of ear-canal input impedance and power reflectance, stapes velocity normalized by ear-canal pressure (PEC), and middle-ear pressure gain (MEG), i.e., cochlear-vestibule pressure (PV) normalized by PEC. The mass, Young's modulus (ETM), and shear modulus (GTM) of the TM are varied, independently and in combination, over a wide range of values, with soft and bony TM-annulus boundary conditions. MEG is recomputed and plotted for each case, along with summaries of the magnitude and group-delay deviations from the baseline over low (below 0.75 kHz), mid (0.75-5 kHz), and high (above 5 kHz) frequencies. The MEG magnitude varies inversely with increasing TM mass at high frequencies. Increasing ETM boosts high frequencies and attenuates low and mid frequencies, especially with a bony TM annulus and when GTM varies in proportion to ETM, as for an isotropic material. Increasing GTM on its own attenuates low and mid frequencies and boosts high frequencies. The sensitivity of MEG to TM material properties has implications for model development and the interpretation of experimental observations. (C) 2017 Acoustical Society of America.
机译:基于解剖学的三维有限元人的中耳(ME)模型用于测试对鼓膜膜(TM)材料特性的声音变速器的灵敏度。基线特性产生与发布的耳管输入阻抗和功率反射测量相当的响应,通过耳环压力(PEC)和中耳压力增益(即,耳蜗 - 前庭压力(PV)进行速度刻录化的速度。由PEC标准化。 TM的质量,杨氏模量(ETM)和剪切模量(ETM)和剪切模量(GTM)在各种值范围内独立地和组合而变化,具有柔软和骨TM环边界条件。 MEG被重新计算并绘制了每种情况,以及从低(0.75kHz)的基线(0.75-5 kHz),高(5 kHz)频率的基线的幅度和群体延迟偏差的概述。 MEG幅度随着高频的增加而变化。增加ETM促进了高频率并衰减了低和中频,特别是骨骼TM环,当GTM与ETM成比例时,如各向同性的材料。增加GTM自身的低频和中频,升高高频。 MEG对TM材料特性的敏感性对模型开发和对实验观察的解释有影响。 (c)2017年声学社会。

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