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A new 3D finite element model of the IEC 60318-1 artificial ear: II. Experimental and numerical validation

机译:IEC 60318-1人造耳的新3D有限元模型:II。实验和数值验证

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摘要

In part I, the feasibility of using three-dimensional (3D) finite elements (FEs) to model the acoustic behaviour of the IEC 60318-1 artificial ear was studied and the numerical approach compared with classical lumped elements modelling. It was shown that by using a more complex acoustic model that took account of thermo-viscous effects, geometric shapes and dimensions, it was possible to develop a realistic model. This model then had clear advantages in comparison with the models based on equivalent circuits using lumped parameters. In fact results from FE modelling produce a better understanding about the physical phenomena produced inside ear simulator couplers, facilitating spatial and temporal visualization of the sound fields produced. The objective of this study (part II) is to extend the investigation by validating the numerical calculations against measurements on an ear simulator conforming to IEC 60318-1. For this purpose, an appropriate commercially available device is taken and a complete 3D FE model developed for it. The numerical model is based on key dimensional data obtained with a non-destructive x-ray inspection technique. Measurements of the acoustic transfer impedance have been carried out on the same device at a national measurement institute using the method embodied in IEC 60318-1. Having accounted for the actual device dimensions, the thermo-viscous effects inside narrow slots and holes and environmental conditions, the results of the numerical modelling were found to be in good agreement with the measured values.
机译:在第一部分中,研究了使用三维(3D)有限元(FE)建模IEC 60318-1人工耳的声学行为的可行性,并将数值方法与经典集总元素建模进行了比较。结果表明,通过使用考虑热粘性效应,几何形状和尺寸的更复杂的声学模型,可以开发出逼真的模型。与基于集总参数的等效电路的模型相比,该模型具有明显的优势。实际上,有限元建模的结果可以更好地了解在耳模拟器耦合器内部产生的物理现象,从而有助于对产生的声场进行时空可视化。本研究(第二部分)的目的是通过对符合IEC 60318-1的耳模拟器上的测量结果进行数值计算验证来扩大研究范围。为此,采用了合适的市售设备,并为其开发了完整的3D FE模型。数值模型基于通过无损X射线检查技术获得的关键尺寸数据。声学传输阻抗的测量是使用IEC 60318-1中包含的方法在国家测量机构的同一设备上进行的。在考虑了实际的器件尺寸,狭窄的狭缝和孔内的热粘性效应以及环境条件后,发现数值模拟的结果与测量值非常吻合。

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