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Processing of forward scattered acoustic fields with intensity sensors

机译:强度传感器的向前散射声场处理

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In bistatic scattering geometries, the detection of a signal scattered in the forward direction by a stationary object can be difficult because the incident and scattered waves combine into a simultaneous mixture. Reverberation can complicate the measurements even further. At opposite ends of the forward scattering phenomenon are the Rayleigh scattering region, where the scattered wave is masked by the incident wave; and the geometrical optics region, where the two wave-fields interfere to form an acoustic shadow. Pressure sensors can only provide an estimate of the magnitude of the intensity associated with an equivalent plane wave field, while true intensity sensors measure simultaneously the acoustic pressure and particle velocity components (or a related quantity such as acceleration, displacement, or pressure gradient) at a single "point" in space. The coherent measurement of both acoustic field parameters provides not only the magnitude of acoustic intensity but the phase between acoustic pressure and velocity. It is hypothesized that processing methods could be developed which exploit the relationship between these types of coherent measurements in order to extract information regarding the presence and nature of an object residing on or very close to the bistatic baseline. In this paper, this hypothesis is explored computationally using a rigid prolate spheroid as a canonical scattering body.
机译:在双浪散射几何形状中,通过固定物体在向前方向上散射的信号可能是困难的,因为入射和散射的波相结合成同时混合物。混响可以进一步复杂化测量。在前向散射现象的相对端是瑞利散射区域,其中散射波被入射波掩盖;和几何光学区域,两个波场干扰形成声学阴影。压力传感器只能提供与等效平面波场相关的强度的大小的估计,而真正的强度传感器同时测量声压和粒子速度分量(或诸如加速,位移或压力梯度的相关数量)空间中的一个“点”。两个声场参数的相干测量不仅提供了声强度的大小,而是声压和速度之间的相位。假设可以开发处理方法,该处理方法利用这些类型的相干测量之间的关系,以便提取关于驻留在基线或非常接近对基线的物体的存在和性质的信息。在本文中,使用刚性的聚合物球体作为规范散射体来计算该假设。

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