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Predictions of middle-ear and passive cochlear mechanics using a finite element model of the pediatric ear

机译:使用小儿耳的有限元模型预测中耳和被动耳蜗的力学

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摘要

A finite element (FE) model was developed based on histological sections of a temporal bone of a 4-year-old child to simulate middle-ear and cochlear function in ears with normal hearing and otitis media. This pediatric model of the normal ear, consisting of an ear canal, middle ear, and spiral cochlea, was first validated with published energy absorbance (EA) measurements in young children with normal ears. The model was used to simulate EA in an ear with middle-ear effusion, whose results were compared to clinical EA measurements. The spiral cochlea component of the model was constructed under the assumption that the mechanics were passive. The FE model predicted middle-ear transfer functions between the ear canal and cochlea. Effects of ear structure and mechanical properties of soft tissues were compared in model predictions for the pediatric and adult ears. EA responses are predicted to differ between adult and pediatric ears due to differences in the stiffness and damping of soft tissues within the ear, and any residual geometrical differences between the adult ear and pediatric ear at age 4 years. The results have significance for predicting effects of otitis media in children.
机译:基于4岁儿童颞骨的组织学切片,开发了一个有限元(FE)模型,以模拟具有正常听力和中耳炎的耳朵的中耳和耳蜗功能。正常儿童的这种耳部模型由耳道,中耳和螺旋耳蜗组成,首先已通过已发表的能量吸收(EA)测量结果验证了正常儿童的年龄。该模型用于模拟中耳积液的耳朵中的EA,并将其结果与临床EA测量进行比较。该模型的螺旋耳蜗组件是在力学是被动的前提下构造的。 FE模型预测了耳道与耳蜗之间的中耳传递函数。在小儿和成年耳朵的模型预测中,比较了耳朵结构和软组织力学性能的影响。成年人和小儿耳朵的EA反应预计会有所不同,这是由于耳朵内软组织的刚度和阻尼不同,以及4岁时成人和小儿耳朵之间的任何残留几何差异。该结果对于预测儿童中耳炎的影响具有重要意义。

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