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Suppression of sound radiation to far field of near-field acoustic communication system using evanescent sound field

机译:利用e逝声场抑制对近场声通信系统远场的声辐射

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摘要

A method of suppressing sound radiation to the far field of a near-field acoustic communication system using an evanescent sound field is proposed. The amplitude of the evanescent sound field generated from an infinite vibrating plate attenuates exponentially with increasing a distance from the surface of the vibrating plate. However, a discontinuity of the sound field exists at the edge of the finite vibrating plate in practice, which broadens the wavenumber spectrum. A sound wave radiates over the evanescent sound field because of broadening of the wavenumber spectrum. Therefore, we calculated the optimum distribution of the particle velocity on the vibrating plate to reduce the broadening of the wavenumber spectrum. We focused on a window function that is utilized in the field of signal analysis for reducing the broadening of the frequency spectrum. The optimization calculation is necessary for the design of window function suitable for suppressing sound radiation and securing a spatial area for data communication. In addition, a wide frequency bandwidth is required to increase the data transmission speed. Therefore, we investigated a suitable method for calculating the sound pressure level at the far field to confirm the variation of the distribution of sound pressure level determined on the basis of the window shape and frequency. The distribution of the sound pressure level at a finite distance was in good agreement with that obtained at an infinite far field under the condition generating the evanescent sound field. Consequently, the window function was optimized by the method used to calculate the distribution of the sound pressure level at an infinite far field using the wavenumber spectrum on the vibrating plate. According to the result of comparing the distributions of the sound pressure level in the cases with and without the window function, it was confirmed that the area whose sound pressure level was reduced from the maximum level to −50 dB was extended. Additionally, we designed a sound insulator so as to realize a similar distribution of the particle velocity to that obtained using the optimized window function. Sound radiation was suppressed using a sound insulator put above the vibrating surface in the simulation using the three-dimensional finite element method. On the basis of this finding, it was suggested that near-field acoustic communication which suppressed sound radiation can be realized by applying the optimized window function to the particle velocity field.
机译:提出了一种利用an逝声场抑制向近场声通信系统的远场辐射的方法。由无限振动板产生的the逝声场的振幅随着与振动板表面的距离增加而呈指数衰减。但是,实际上,在有限振动板的边缘存在声场的不连续性,从而扩大了波数谱。由于波数频谱变宽,声波在the逝声场上辐射。因此,我们计算了振动板上颗粒速度的最佳分布,以减小波数谱的展宽。我们专注于在信号分析领域中使用的窗口函数,以减少频谱的拓宽。优化计算对于设计适合于抑制声音辐射并确保用于数据通信的空间区域的窗口功能是必要的。另外,需要宽的频率带宽以提高数据传输速度。因此,我们研究了一种用于计算远场声压级的合适方法,以确认根据窗口形状和频率确定的声压级分布的变化。有限距离处的声压级分布与在产生the逝声场的条件下在无限远场获得的声压级良好吻合。因此,通过使用振动板上的波数谱来计算无限远场中的声压级分布的方法,优化了窗函数。根据比较具有和不具有窗功能的情况下的声压水平的分布的结果,可以确认,声压水平从最大水平降低到-50dB的区域被扩展。此外,我们设计了一个隔音体,以实现与使用优化的窗函数获得的粒子速度相似的粒子速度分布。在模拟中,使用三维有限元方法,通过在振动表面上方放置隔音体来抑制声音辐射。根据这一发现,建议可以通过将优化的窗函数应用于粒子速度场来实现抑制声辐射的近场声通信。

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