Theoretical analysis and experimental verification of spatial coherence of acoustic cavitation noise from bubble clusters under ultrasonic horn

Takanobu Kuroyama, H. Ogasawara, K. Mori
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Abstract

Acoustic cavitation bubbles under ultrasonic horn in water emit acoustic cavitation noise, which consists of spherical shockwaves. This study theoretically derived the spatial coherence of acoustic cavitation noise or, more precisely, the spectral degree of coherence. The acoustic cavitation noise was found to have spatial coherence characteristics similar to the "thermal light" in optics, unlike ultrasound generated by general transducers, which are analogous to "laser" with high coherence. The experiments validated the derived theory and showed that the spectral degree of coherence of the acoustic cavitation noise depends on the product between the distribution width of the shockwave origin, proportional to the horn diameter, and the angle between the hydrophones viewed from the horn. The lower the product gives, the higher the spectral degree of coherence at a higher frequency range.
超声波号角下气泡簇声学空化噪声空间相干性的理论分析与实验验证
超声波喇叭作用下的水中声空化气泡会发出由球形冲击波组成的声空化噪声。这项研究从理论上推导出了声空化噪声的空间相干性,或者更准确地说,相干的光谱度。研究发现,声空化噪声的空间相干特性类似于光学中的 "热光",与一般换能器产生的超声波不同,后者类似于具有高相干性的 "激光"。实验验证了推导出的理论,并表明声空化噪声的频谱相干程度取决于冲击波起源的分布宽度(与喇叭直径成比例)与从喇叭看水听器之间的角度之间的乘积。乘积越小,在较高频率范围内的频谱相干度越高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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