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Development of a high frequency underwater acoustic intensity probe

机译:高频水下声学强度探头的开发

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The development of an underwater acoustic intensity probe for high frequency applications (e.g., f ~10 kHz) is presented. The probe measures the acoustic pressure along with two orthogonal components of the particle acceleration; hence, the probe relies on inertial sensing as opposed to a gradient technique. The acoustic pressure is measured with a ring hydrophone that is capped at both ends. The accelerometers are positioned within the internal cavity created by the hydrophone and are oriented to measure sound in the horizontal plane. The probe is negatively buoyant, contains a viscoelastic suspension system, and is positioned within a free-flooding stainless steel cage that contains extensional damping treatments and exhibits a low scattering cross-section. Negative buoyancy results from making the probe small so that it does not scatter the acoustic field over the frequency range of interest nor exhibit any in-band structural modes. The consequence of this action translates into an in-water acceleration sensitivity that is reduced by a factor of two relative to the intrinsic value. The hydrophone has an omni-directional beam pattern and the accelerometers have dipole directivity. Lumped parameter circuit models will be presented along with performance data.
机译:提出了用于高频应用的水下声学强度探针(例如,F〜10 kHz)。探针测量声压以及颗粒加速的两个正交组分;因此,探针依赖于惯性感测而不是梯度技术。用环形室在两端覆盖的环水电器测量声学压力。加速度计定位在由水听器产生的内腔内,并定向以测量水平面中的声音。探针具有负浮力,含有粘弹性悬架系统,并且定位在自由溢出的不锈钢笼内,该悬浮式不锈钢笼中含有延伸抑制处理,并且具有低散射横截面。消极的浮力使探头较小,使得它不会在景点范围内散射声场,也不会展示任何带状结构模式。该动作的结果转化为水的加速度灵敏度,相对于内在值减少了两倍。水听器具有全向梁图案,加速度计具有偶极方向性。集总参数电路模型将与性能数据一起呈现。

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