Cartilage Conduction Sounds in Cases of Wearing Different Transducers on a Head and Torso Simulator with a Manipulated Ear Pinna Simulator

IF 2.1 Q1 AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY
Ryota Shimokura, Tadashi Nishimura, Hiroshi Hosoi
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引用次数: 0

Abstract

Cartilage conduction is known widely as a third hearing transmission mechanism after the air and bone conduction methods, and transducers dedicated to the production of cartilage conduction sounds have been developed by several Japanese companies. To estimate the acoustic performance of the five cartilage conduction transducers selected for this study, both airborne sounds and cartilage conduction sounds were measured. Airborne sounds can be measured using a commercial condenser microphone; however, cartilage conduction sounds are impossible to measure using a conventional head and torso simulator (HATS), because the standard-issue ear pinna simulator cannot reproduce cartilage conduction sounds with the same spectral characteristics as the corresponding sounds measured in humans. Therefore, this study replaced the standard-issue simulator with a developed pinna simulator that can produce similar spectral characteristics to those of humans. The HATS manipulated in this manner realized results demonstrating that transducers that fitted the entrance to the external auditory canal more densely could produce greater cartilage conduction sounds. Among the five transducers under test, the ring-shaped device, which was not much larger than the entrance to the canal, satisfied the spectral requirements.
在头部和躯干模拟器上佩戴不同换能器与操纵耳耳廓模拟器的情况下软骨传导声音
软骨传导被广泛认为是继空气传导和骨传导之后的第三种听觉传导机制,日本几家公司已经开发出专门用于产生软骨传导声音的换能器。为了评估本研究中选择的五种软骨传导换能器的声学性能,我们测量了空气声和软骨传导声。空中声音可以用商用电容麦克风测量;然而,使用传统的头部和躯干模拟器(HATS)是不可能测量软骨传导声音的,因为标准的耳廓模拟器无法再现软骨传导声音,其频谱特征与在人类中测量到的声音相同。因此,本研究用一种开发的耳廓模拟器取代了标准模拟器,该模拟器可以产生与人类相似的光谱特征。以这种方式操作的HATS实现的结果表明,更密集地安装外耳道入口的换能器可以产生更大的软骨传导声音。在测试的5个换能器中,环形装置满足了频谱要求,该装置比运河入口大不了多少。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Audiology Research
Audiology Research AUDIOLOGY & SPEECH-LANGUAGE PATHOLOGY-
CiteScore
2.30
自引率
23.50%
发文量
56
审稿时长
11 weeks
期刊介绍: The mission of Audiology Research is to publish contemporary, ethical, clinically relevant scientific researches related to the basic science and clinical aspects of the auditory and vestibular system and diseases of the ear that can be used by clinicians, scientists and specialists to improve understanding and treatment of patients with audiological and neurotological disorders.
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