Title :
Vibration of a single microcapsule with a hard plastic shell in an acoustic standing wave field
Author :
Koyama, Daisuke ; Kotera, Hironori ; Kitazawa, Natsuko ; Yoshida, Kenji ; Nakamura, Kentaro ; Watanabe, Yoshiaki
Author_Institution :
Precision & Intell. Lab., Tokyo Inst. of Technol., Yokohama, Japan
fDate :
4/1/2011 12:00:00 AM
Abstract :
Observation techniques for measuring the small vibration of a single microcapsule of tens of nanometers in an acoustic standing wave field are discussed. First, simultaneous optical observation of a microbubble vibration by two methods is investigated, using a high-speed video camera, which permits two-dimensional observation of the bubble vibration, and a laser Doppler vibrometer (LDV), which can observe small bubble vibration amplitudes at high frequency. Bubbles of tens of micrometers size were trapped at the antinode of an acoustic standing wave generated in an observational cell. Bubble vibration at 27 kHz could be observed and the experimental results for the two methods showed good agreement. The radial vibration of microcapsules with a hard plastic shell was observed using the LDV and the measurement of the capsule vibration with radial oscillation amplitude of tens of nanometers was successful. The acoustic radiation force acting on microcapsules in the acoustic standing wave was measured from the trapped position of the standing wave and the radial oscillation amplitude of the capsules was estimated from the theoretical equation of the acoustic radiation force, giving results in good agreement with the LDV measurements. The radial oscillation amplitude of a capsule was found to be proportional to the amplitude of the driving sound pressure. A larger expansion ratio was observed for capsules closer to the resonance condition under the same driving sound pressure and frequency.
Keywords :
Doppler measurement; acoustic variables measurement; biomedical materials; biomedical ultrasonics; measurement by laser beam; radiation pressure; vibration measurement; 2D bubble vibration observation; LDV; acoustic radiation force equation; acoustic standing wave antinode; acoustic standing wave field; driving sound pressure amplitude; expansion ratio; frequency 27 kHz; hard plastic shell; high frequency bubble vibration amplitudes; high speed video camera; laser Doppler vibrometer; microbubble vibration; microcapsule radial vibration; microcapsule vibration measurement; radial oscillation amplitude; simultaneous optical observation; single microcapsule vibration; Acoustic measurements; Acoustics; Cameras; Force; Measurement by laser beam; Oscillators; Vibrations; Acoustics; Capsules; Coated Materials, Biocompatible; Computer Simulation; Hardness; Lasers; Microbubbles; Plastics; Pressure; Sonication; Vibration;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2011.1866