Multiscale Finite Element Modeling of Human Ear for Acoustic Wave Transmission Into Cochlea and Hair Cells Fatigue Failure.

IF 1.7 4区 医学 Q4 BIOPHYSICS Journal of Biomechanical Engineering-Transactions of the Asme Pub Date : 2025-04-01 DOI:10.1115/1.4067577
Yijie Jiang, John J Bradshaw, Roshan Sharma, Rong Z Gan
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Abstract

Hearing loss is highly related to acoustic injuries and mechanical damage of ear tissues. The mechanical responses and failures of ear tissues are difficult to measure experimentally, especially cochlear hair cells within the organ of Corti (OC) at microscale. Finite element (FE) modeling has become an important tool for simulating acoustic wave transmission and studying cochlear mechanics. This study harnessed a multiscale FE model to investigate the mechanical behaviors of ear tissues in response to acoustic wave and developed a fatigue mechanical model to describe the outer hair cells (OHCs) failure. A three-dimensional (3D) multiscale FE model consisting of a macroscale model of the ear canal, middle ear, and three-chambered cochlea and a microscale OC model on a representative basilar membrane section, including the hair cells, membranes, and supporting cells, was established. Harmonic acoustic mode was used in the FE model for simulating various acoustic pressures and frequencies. The cochlear basilar membrane and the cochlear pressure induced by acoustic pressures were derived from the macroscale model and used as inputs for microscale OC model. The OC model identified the stress and strain concentrations in the reticular lamina (RL) at the root of stereocilia hair bundles and in the Deiter's cells at the connecting ends with OHCs, indicating the potential mechanical damage sites. OHCs were under cyclic loading and the alternating stress was quantified by the FE model. A fatigue mechanism for OHCs was established based on the modeling results and experimental data. This mechanism would be used for predicting fatigue failure and the resulting hearing loss.

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人耳声波传入耳蜗及毛细胞疲劳失效的多尺度有限元模拟。
听力损失与耳组织的声损伤和机械损伤密切相关。耳组织,特别是耳蜗毛细胞在微尺度下的力学响应难以通过实验测量。有限元建模已成为模拟声波传输和研究耳蜗力学的重要工具。本研究利用多尺度有限元模型研究了耳组织在声波作用下的力学行为,并建立了描述外毛细胞(OHCs)损伤的疲劳力学模型。三维多尺度有限元模型包括耳道、中耳和三室耳蜗的宏观模型和具有代表性的基底膜切片(包括毛细胞、膜和支持细胞)的微观模型。有限元模型采用谐波模式来模拟各种声压和频率。耳蜗基底膜和声压引起的耳蜗压力由宏观尺度模型导出,并作为微观尺度耳蜗模型的输入。OC模型确定了固纤毛毛束根部网状层和与OHCs连接端的Deiter细胞的应力和应变浓度,表明了潜在的机械损伤部位。在循环荷载作用下,采用有限元模型量化交变应力。基于建模结果和实验数据,建立了热碳材料的疲劳机理。该机制将用于预测疲劳失效和由此导致的听力损失。
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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
期刊最新文献
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