Lewis James D
Department of Audiology and Speech Pathology, University of Tennessee Health Science Center, Knoxville, Tennessee 37996, USA.
J Acoust Soc Am. 2018 Feb;143(2):1106. doi: 10.1121/1.5024360.
This study examined the effect of the area discontinuity between the measurement-probe sound source and ear canal on the plane-wave approximation of power reflectance. The area discontinuity was hypothesized to introduce measurement-location sensitivity to the power reflectance, especially above 5 kHz. Measurements were made in human and artificial ear canals (tubes coupled to an IEC711 ear simulator). In both cases, the power reflectance exhibited a high-frequency notch that decreased in frequency as the residual canal length increased. The area discontinuity between probe and canal was modeled as an inductance in series with the canal's acoustic impedance. To compensate for the effects of the discontinuity, the discontinuity's impedance was subtracted from the measured load impedance of the canal. In the artificial ears, compensation for the estimated area discontinuity removed the high-frequency notch and reduced the position dependence of the power reflectance. Subtracting the estimated discontinuity impedance from the load impedance in the human ears had a minimal effect on the power-reflectance measurement-location variability and magnitude of the high-frequency notch. The area-discontinuity between probe and ear canal is not supported as the primary source of measurement-variability in the plane-wave approximation of the power reflectance in human ears.
本研究考察了测量探头声源与耳道之间的面积不连续性对功率反射率平面波近似的影响。假设该面积不连续性会导致功率反射率的测量位置敏感性,尤其是在5kHz以上。在人耳道和人工耳道(与IEC711耳模拟器相连的管子)中进行了测量。在这两种情况下,功率反射率都呈现出一个高频凹陷,随着残余耳道长度的增加,其频率降低。探头与耳道之间的面积不连续性被建模为与耳道声阻抗串联的电感。为了补偿不连续性的影响,从测量的耳道负载阻抗中减去不连续性的阻抗。在人工耳中,对估计的面积不连续性进行补偿消除了高频凹陷,并降低了功率反射率的位置依赖性。从人耳的负载阻抗中减去估计的不连续性阻抗,对功率反射率测量位置的变异性和高频凹陷的幅度影响最小。探头与耳道之间的面积不连续性并不被认为是人类耳朵功率反射率平面波近似中测量变异性的主要来源。