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首页> 外文期刊>The Journal of the Acoustical Society of America >Near field acoustic holography with particle velocity transducers
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Near field acoustic holography with particle velocity transducers

机译:带粒子速度传感器的近场声全息

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Near field acoustic holography is usually based on measurement of the pressure. This paper describes an investigation of an alternative technique that involves measuring the normal component of the acoustic particle velocity. A simulation study shows that there is no appreciable difference between the quality of predictions of the pressure based on knowledge of the pressure in the measurement plane and predictions of the particle velocity based on knowledge of the particle velocity in the measurement plane. However, when the particle velocity is predicted close to the source on the basis of the pressure measured in a plane further away, high spatial frequency components corresponding to evanescent modes are not only amplified by the distance but also by the wave number ratio (k(z)/k). By contrast, when the pressure is predicted close to the source on the basis of the particle velocity measured in a plane further away, high spatial frequency components are reduced by the reciprocal wave number ratio (k/k(z)). For the same reason holography based on the particle velocity is less sensitive to transducer mismatch than the conventional technique based on the pressure. These findings are confirmed by an experimental investigation made with a p-u sound intensity probe produced by Microflown. (c) 2005 Acoustical Society of America.
机译:近场声全息术通常基于压力的测量。本文介绍了一种替代技术的研究,该技术涉及测量声粒子速度的法向分量。仿真研究表明,基于测量平面中压力知识的压力预测质量与基于测量平面中粒子速度知识的颗粒速度预测质量之间没有明显差异。但是,当根据在更远的平面中测得的压力预测粒子速度接近源时,与渐逝模式相对应的高空间频率分量不仅会被距离放大,还会被波数比(k( z)/ k)。相反,当根据在更远的平面中测得的粒子速度来预测压力接近源时,则高空间频率分量会降低,即互为倒数波数比(k / k(z))。出于同样的原因,基于粒子速度的全息术比基于压力的传统技术对换能器失配的敏感性更低。这些发现通过使用Microflown生产的p-u声强探头进行的实验研究得到了证实。 (c)2005年美国声学学会。

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