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The Auditory Mechanics of the Outer Ear of the Bush Cricket: A Numerical Approach

机译:布什板球外耳的听觉力学:一种数值方法

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摘要

Bush crickets have tympanal ears located in the forelegs. Their ears are elaborate, as they have outer-, middle-, and inner-ear components. The outer ear comprises an air-filled tube derived from the respiratory trachea, the acoustic trachea (AT), which transfers sound from the mesothoracic acoustic spiracle to the internal side of the ear drums in the legs. A key feature of the AT is its capacity to reduce the velocity of sound propagation and alter the acoustic driving forces of the tympanum (the ear drum), producing differences in sound pressure and time between the left and right sides, therefore aiding the directional hearing of the animal. It has been demonstrated experimentally that the tracheal sound transmission generates a gain of ∼15 dB and a propagation velocity of 255 ms−1, an approximately 25% reduction from free-field propagation. However, the mechanism responsible for this change in sound pressure level and velocity remains elusive. In this study, we investigate the mechanical processes behind the sound pressure gain in the AT by numerically modeling the tracheal acoustic behavior using the finite-element method and real three-dimensional geometries of the tracheae of the bush cricket Copiphora gorgonensis. Taking into account the thermoviscous acoustic-shell interaction on the propagation of sound, we analyze the effects of the horn-shaped domain, material properties of the tracheal wall, and the thermal processes on the change in sound pressure level in the AT. Through the numerical results obtained, it is discerned that the tracheal geometry is the main factor contributing to the observed pressure gain.
机译:布什蟋蟀有位于前肢的鼓室耳朵。他们的耳朵是详细的,因为它们具有外耳,中耳和内耳组件。外耳包括衍生自呼吸道气管的充气管,声气气管(处),其将声音从尺寸的声学螺旋中传递到腿部耳鼓的内侧。 AT的一个关键特征是其降低声音传播速度的能力,并改变鼓室(耳鼓)的声学驱动力,产生左侧和右侧之间的声压和时间的差异,从而促使方向听力动物。已经通过实验证明了气管声音传输产生~15dB的增益和255ms-1的传播速度,从自由场传播减少约25%。然而,负责这种声压级和速度变化的机制仍然是难以捉摸的。在这项研究中,我们通过使用灌木蟋蟀Copiphora Gorgonensis的Tracheae的有限元方法和真正的三维几何形式,通过数值模拟气管声学行为来研究声压增益背后的机械过程。考虑到声音传播的热致原声壳相互作用,我们分析了喇叭形域,气管壁的材料特性的影响,以及在at的声压水平变化的热过程。通过获得的数值结果,辨别出气管几何形状是有助于观察到的压力增益的主要因素。

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