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The Influence of Piezoelectric Transducer Stimulating Sites on the Performance of Implantable Middle Ear Hearing Devices: A Numerical Analysis

机译:压电换能器刺激部位对植入式中耳助听器性能的影响:数值分析

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摘要

To overcome the inherent deficiencies of hearing aids, implantable middle ear hearing devices (IMEHDs) have emerged as a new treatment for hearing loss. However, clinical results show that the IMEHD performance varies with its transducer’s stimulating site. To numerically analyze the influence of the piezoelectric transducer’s stimulating sites on its hearing compensation performance, we constructed a human ear finite element model and confirmed its validity. Based on this finite element model, the displacement stimulation, which simulates the piezoelectric transducer’s stimulation, was applied to the umbo, the incus long process, the incus body, the stapes, and the round window membrane, respectively. Then, the stimulating site’s effect of the piezoelectric transducer was analyzed by comparing the corresponding displacements of the basilar membrane. Besides, the stimulating site’s sensitivity to the direction of excitation was also studied. The result of the finite element analysis shows that stimulating the incus body is least efficient for the piezoelectric transducer. Meanwhile, stimulating the round window membrane or the stapes generates a higher basilar membrane displacement than stimulating the eardrum or the incus long process. However, the performance of these two ideal sites’ stimulation is sensitive to the changes in the excitation’s direction. Thus, the round window membrane and the stapes is the ideal stimulating sites for the piezoelectric transducer regarding the driving efficiency. The direction of the excitation should be guaranteed for these ideal sites.
机译:为了克服助听器的固有缺陷,植入式中耳助听器(IMEHD)已经成为听力损失的一种新疗法。但是,临床结果表明,IMEHD性能随其换能器的刺激部位而变化。为了数值分析压电换能器的刺激部位对其听力补偿性能的影响,我们构建了人耳有限元模型并确认了其有效性。在此有限元模型的基础上,将位移刺激模拟了压电换能器的刺激,分别将其应用于了腰鼓,骨cus长突,骨cus体,the骨和圆窗膜。然后,通过比较基底膜的相应位移来分析压电换能器的刺激部位效果。此外,还研究了刺激部位对激发方向的敏感性。有限元分析的结果表明,对压电换能器而言,刺激in骨体效率最低。同时,刺激圆形窗膜或the骨产生的基底膜移位高于刺激鼓膜或砧骨的长突。但是,这两个理想部位的刺激性能对激发方向的变化很敏感。因此,就驱动效率而言,圆形窗膜和the骨是压电换能器的理想刺激部位。对于这些理想位置,应确保激发方向。

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