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人砧镫关节的动态特性——实验测量与有限元建模

Dynamic properties of human incudostapedial joint-Experimental measurement and finite element modeling.

作者信息

Jiang Shangyuan, Gan Rong Z

机构信息

School of Aerospace and Mechanical Engineering, University of Oklahoma, 865 Asp Avenue, Room 200, Norman, OK 73019, USA.

School of Aerospace and Mechanical Engineering, University of Oklahoma, 865 Asp Avenue, Room 200, Norman, OK 73019, USA.

出版信息

Med Eng Phys. 2018 Apr;54:14-21. doi: 10.1016/j.medengphy.2018.02.006. Epub 2018 Feb 22.

Abstract

The incudostapedial joint (ISJ) is a synovial joint connecting the incus and stapes in the middle ear. Mechanical properties of the ISJ directly affect sound transmission from the tympanic membrane to the cochlea. However, how ISJ properties change with frequency has not been investigated. In this paper, we report the dynamic properties of the human ISJ measured in eight samples using a dynamic mechanical analyzer (DMA) for frequencies from 1 to 80 Hz at three temperatures of 5, 25 and 37 °C. The frequency-temperature superposition (FTS) principle was used to extrapolate the results to 8 kHz. The complex modulus of ISJ was measured with a mean storage modulus of 1.14 MPa at 1 Hz that increased to 3.01 MPa at 8 kHz, and a loss modulus that increased from 0.07 to 0.47 MPa. A 3-dimensional finite element (FE) model consisting of the articular cartilage, joint capsule and synovial fluid was then constructed to derive mechanical properties of ISJ components by matching the model results to experimental data. Modeling results showed that mechanical properties of the joint capsule and synovial fluid affected the dynamic behavior of the joint. This study contributes to a better understanding of the structure-function relationship of the ISJ for sound transmission.

摘要

砧镫关节(ISJ)是连接中耳内砧骨和镫骨的滑膜关节。砧镫关节的力学特性直接影响声音从鼓膜到耳蜗的传播。然而,砧镫关节的特性如何随频率变化尚未得到研究。在本文中,我们报告了使用动态力学分析仪(DMA)在八个样本中测量的人体砧镫关节在5、25和37°C三个温度下1至80Hz频率范围内的动态特性。频率-温度叠加(FTS)原理用于将结果外推至8kHz。测量得到砧镫关节的复数模量,在1Hz时平均储能模量为1.14MPa,在8kHz时增加到3.01MPa,损耗模量从0.07MPa增加到0.47MPa。然后构建了一个由关节软骨、关节囊和滑液组成的三维有限元(FE)模型,通过将模型结果与实验数据匹配来推导砧镫关节各组成部分的力学特性。建模结果表明,关节囊和滑液的力学特性影响了关节的动态行为。这项研究有助于更好地理解砧镫关节在声音传播方面的结构-功能关系。

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