Title :
Noncontact ultrasonic particle manipulation for a long distance in air using a bending vibrator and a reflector
Author :
Koyama, Daisuke ; Ito, Yu ; Nakamura, Kentaro
Author_Institution :
Precision & Intell. Lab., Tokyo Inst. of Technol., Yokohama, Japan
Abstract :
Ultrasonic manipulation of small particles, including liquid droplets, over long distances is discussed. We used an experimental setup consisting of a 605-mm-long duralumin bending vibrating plate and a reflector. Two bolt-clamped Langevin transducers with horns were attached to both sides of the vibrating plate to generate flexural vibrations along the plate. A plane reflector with the same dimensions as the vibrating plate was installed parallel to the plate at a distance of approximately 17 mm to generate an ultrasonic standing wave between them and trap the small particles at the nodal lines. The acoustic field and acoustic radiation force between the vibrator and reflector were calculated by finite element analysis to predict the positions of the trapped particles. The sound pressure distribution was measured experimentally using a scanning laser Doppler vibrometer. The flexural wave was excited along the vibrator at 22.5 kHz. A lattice standing wave with a wavelength of 35 mm in the length direction could be excited between the vibrator and the reflector, and polystyrene spheres with diameters of several millimeters could be trapped at the nodal lines of the standing wave. The experimental and calculated results showed good agreement for the relationship between the driving phase difference and the positions of the trapped particle. Noncontact transportation of the trapped particles over long distances could be achieved by changing the driving phase difference. The position of the trapped particles could be controlled to an accuracy of 0.046 mm/deg. An ethanol droplet could also be trapped and moved.
Keywords :
acoustic field; acoustic intensity; finite element analysis; ultrasonic applications; ultrasonic effects; ultrasonic reflection; ultrasonic transducers; vibrations; acoustic field; acoustic radiation force; bending vibrator; bolt-clamped Langevin transducers; driving phase difference; duralumin bending vibrating plate; ethanol droplet; finite element analysis; flexural vibration; flexural wave excitation; frequency 22.5 kHz; laser Doppler vibrometer; lattice standing wave; liquid droplets; noncontact trapped particle transportation; noncontact ultrasonic particle manipulation; size 605 mm; sound pressure distribution; ultrasonic reflector; ultrasonic standing wave; Acoustic measurements; Finite element methods; Laser excitation; Lattices; Pressure measurement; Transportation; Ultrasonic transducers; Ultrasonic variables measurement; Vibrometers; Wavelength measurement; bending vibration; droplet; lattice standing wave; noncontact transportation; ultrasound;
Conference_Titel :
Ultrasonics Symposium (IUS), 2009 IEEE International
Conference_Location :
Rome
Print_ISBN :
978-1-4244-4389-5
Electronic_ISBN :
1948-5719
DOI :
10.1109/ULTSYM.2009.5442019