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Attenuating the ear canal feedback pressure of a laser-driven hearing aid

机译:减轻激光助听器的耳道反馈压力

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摘要

Microphone placement behind the pinna, which minimizes feedback but also reduces perception of the high-frequency pinna cues needed for sound localization, is one reason why hearing-aid users often complain of poor sound quality and difficulty understanding speech in noisy situations. In this paper, two strategies are investigated for minimizing the feedback pressure (thereby increasing the maximum stable gain, MSG) of a wide-bandwidth light-activated contact hearing aid (CHA) to facilitate microphone placement in the ear canal (EC): (1) changing the location of the drive force and its direction at the umbo, and (2) placing an acoustic damper within the EC to reduce the feedback pressure at the microphone location. The MSG and equivalent pressure output (EPO) are calculated in a 3D finite element model of a human middle ear based on micro computed tomography (micro-CT) images. The model calculations indicate that changing the umbo-force direction can decrease feedback pressure, but at the expense of decreased EPO. However the model shows improvements in MSG without sacrificing EPO when an acoustic damper is placed in the EC. This was verified through benchtop experimentation and in human cadaver temporal bones. The results pave the path towards a wide-bandwidth hearing aid that incorporates an EC-microphone design.
机译:将麦克风放置在耳廓后方,可以最大程度地减少反馈,但同时也降低了对声音定位所需的高频耳廓线索的认识,这是助听器用户经常抱怨声音质量差,在嘈杂的情况下难以理解语音的原因之一。本文研究了两种策略来最大程度地减小宽带光激活接触式助听器(CHA)的反馈压力(从而增加最大稳定增益MSG),以便于将麦克风放置在耳道(EC)中:( 1)改变驱动力的位置及其在调幅器上的方向,(2)在EC内放置一个消音器,以减小麦克风位置的反馈压力。 MSG和等效压力输出(EPO)在人中耳的3D有限元模型中基于微计算机断层扫描(micro-CT)图像进行计算。模型计算表明,改变推力方向可以降低反馈压力,但以降低EPO为代价。但是,当在EC中放置消音器时,该模型显示了MSG的改进而没有牺牲EPO。这已通过台式实验和人体尸体颞骨进行了验证。结果为采用EC麦克风设计的宽带助听器铺平了道路。

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