A Transfer Matrix Model of the IEC 60318-4 Ear Simulator: Application to the Simulation of Earplug Insertion Loss

Q1 Arts and Humanities Acta Acustica united with Acustica Pub Date : 2019-11-01 DOI:10.3813/aaa.919403
Yu Luan, F. Sgard, S. Benacchio, H. Nélisse, O. Doutres
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引用次数: 3

Abstract

The IEC 60318-4 ear simulator is used to measure the insertion loss (IL) of earplugs in the ear canal of an acoustical test fixture (ATF) and is designed to represent an average acoustic impedance (in a reference plane) of the human ear. The ear simulator is usually modeled using a lumped parameter model (LPM) which has frequency limitations and inadequately accounts for the thermo-viscous effects in the simulator. The simulator numerical models that can better deal with the thermo-viscous phenomena often lack essential geometric details. Most related studies also suffer from the lack of experimental validation of the models. Therefore, a transfer matrix (TM) model of the IEC 60318-4 simulator is proposed based on a direct assessment of its geometric dimensions. Such a model is of particular interest for designing artificial ear simulators. The variability in the simulator impedance due to the geometric uncertainties is quantified using the Monte Carlo method. The TM model is validated using i) a finite element (FE) model of the simulator and ii) impedance measurements with a sound intensity probe. It is found to better describe the simulator impedance above 3 kHz compared to the LPM. The TM model is then coupled to a FE model of an occluded ATF ear canal to simulate the IL of an earplug in the frequency range [100 Hz, 10 kHz]. In the model, the simulator is considered as a cylindrical cavity terminated by an equivalent tympanic impedance which is determined from the TM model to simulate the sound pressure measured at the real microphone position (not at the reference plane) in the ATF ear canal. The simulated IL is validated against i) that obtained with a complete FE model of the corresponding system and ii) measurements using an ATF. The TM model is shown to better agree with the simulator FE model than the LPM above 6 kHz regarding the earplug IL simulated using this method.
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iec60318 -4耳模拟器的传递矩阵模型:在耳塞插入损耗模拟中的应用
IEC 60318-4耳模拟器用于测量声学测试夹具(ATF)耳道内耳塞的插入损耗(IL),并设计用于表示人耳的平均声阻抗(在参考平面内)。耳模拟器通常采用集总参数模型(LPM)建模,该模型存在频率限制,且不能充分考虑模拟器中的热粘效应。能够较好地处理热粘性现象的仿真数值模型往往缺乏必要的几何细节。大多数相关研究还存在模型缺乏实验验证的问题。因此,提出了基于直接评估其几何尺寸的iec60318 -4模拟器的传递矩阵(TM)模型。这种模型对于设计人工耳模拟器具有特殊的意义。利用蒙特卡罗方法对几何不确定性引起的模拟器阻抗变异性进行了量化。通过i)模拟器的有限元模型和ii)声强探头的阻抗测量验证了TM模型。与LPM相比,可以更好地描述3 kHz以上的模拟器阻抗。然后将TM模型与封闭ATF耳道的FE模型耦合,模拟耳塞在[100 Hz, 10 kHz]频率范围内的IL。在模型中,模拟器被认为是一个圆柱形腔,末端是由TM模型确定的等效鼓室阻抗,以模拟在ATF耳道中真实麦克风位置(而不是参考平面)测量的声压。通过i)对应系统的完整有限元模型和ii)使用ATF的测量来验证模拟的IL。对于用该方法模拟的耳塞IL, TM模型比LPM更符合模拟器FE模型。
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来源期刊
CiteScore
2.60
自引率
0.00%
发文量
0
审稿时长
6.8 months
期刊介绍: Cessation. Acta Acustica united with Acustica (Acta Acust united Ac), was published together with the European Acoustics Association (EAA). It was an international, peer-reviewed journal on acoustics. It published original articles on all subjects in the field of acoustics, such as • General Linear Acoustics, • Nonlinear Acoustics, Macrosonics, • Aeroacoustics, • Atmospheric Sound, • Underwater Sound, • Ultrasonics, • Physical Acoustics, • Structural Acoustics, • Noise Control, • Active Control, • Environmental Noise, • Building Acoustics, • Room Acoustics, • Acoustic Materials and Metamaterials, • Audio Signal Processing and Transducers, • Computational and Numerical Acoustics, • Hearing, Audiology and Psychoacoustics, • Speech, • Musical Acoustics, • Virtual Acoustics, • Auditory Quality of Systems, • Animal Bioacoustics, • History of Acoustics.
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