Gaitan D Felipe, Tessien Ross A, Hiller Robert A, Gutierrez Joel, Scott Corey, Tardif Henry, Callahan Brant, Matula Thomas J, Crum Lawrence A, Holt R Glynn, Church Charles C, Raymond Jason L
Impulse Devices, Inc, 13366 Grass Valley Avenue, Unit H, Grass Valley, California 95945, USA.
J Acoust Soc Am. 2010 Jun;127(6):3456-65. doi: 10.1121/1.3377062.
It is well known that cavitation collapse can generate intense concentrations of mechanical energy, sufficient to erode even the hardest metals and to generate light emissions visible to the naked eye [sonoluminescence (SL)]. Considerable attention has been devoted to the phenomenon of "single bubble sonoluminescence" (SBSL) in which a single stable cavitation bubble radiates light flashes each and every acoustic cycle. Most of these studies involve acoustic resonators in which the ambient pressure is near 0.1 MPa (1 bar), and with acoustic driving pressures on the order of 0.1 MPa. This study describes a high-quality factor, spherical resonator capable of achieving acoustic cavitation at ambient pressures in excess of 30 MPa (300 bars). This system generates bursts of violent inertial cavitation events lasting only a few milliseconds (hundreds of acoustic cycles), in contrast with the repetitive cavitation events (lasting several minutes) observed in SBSL; accordingly, these events are described as "inertial transient cavitation." Cavitation observed in this high pressure resonator is characterized by flashes of light with intensities up to 1000 times brighter than SBSL flashes, as well as spherical shock waves with amplitudes exceeding 30 MPa at the resonator wall. Both SL and shock amplitudes increase with static pressure.
众所周知,空化崩溃会产生强烈的机械能集中,足以侵蚀甚至最坚硬的金属并产生肉眼可见的光发射[声致发光(SL)]。“单泡声致发光”(SBSL)现象受到了相当多的关注,其中单个稳定的空化泡在每个声循环中都会辐射出闪光。这些研究大多涉及环境压力接近0.1MPa(1巴)且声驱动压力约为0.1MPa的声学谐振器。本研究描述了一种高品质因数的球形谐振器,它能够在超过30MPa(300巴)的环境压力下实现声空化。与在SBSL中观察到的重复空化事件(持续几分钟)相比,该系统会产生仅持续几毫秒(数百个声循环)的剧烈惯性空化事件爆发;因此,这些事件被描述为“惯性瞬态空化”。在这种高压谐振器中观察到的空化的特征是,其闪光强度比SBSL闪光亮1000倍,以及在谐振器壁处振幅超过30MPa的球形冲击波。SL和冲击波振幅都随静压增加。