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1.
Rev Sci Instrum ; 83(1): 014301, 2012 Jan.
Article de Anglais | MEDLINE | ID: mdl-22299970

RÉSUMÉ

The performance of a newly developed light spot hydrophone (LSHD) in lithotripter field characterization was compared to that of the fiber optic probe hydrophone (FOPH). Pressure waveforms produced by a stable electromagnetic shock wave source were measured by the LSHD and FOPH under identical experimental conditions. In the low energy regime, focus and field acoustic parameters matched well between the two hydrophones. At clinically relevant high energy settings for shock wave lithotripsy, the measured leading compressive pressure waveforms matched closely with each other. However, the LSHD recorded slightly larger |P_| (p < 0.05) and secondary peak compressive pressures (p < 0.01) than the FOPH, leading to about 20% increase in total acoustic pulse energy calculated in a 6 mm radius around the focus (p = 0.06). Tensile pulse durations deviated ~5% (p < 0.01) due to tensile wave shortening from cavitation activity using the LSHD. Intermittent compression spikes and laser light reflection artifacts have been correlated to bubble activity based on simultaneous high-speed imaging analysis. Altogether, both hydrophones are adequate for lithotripter field characterization as specified by the international standard IEC 61846.


Sujet(s)
Lumière , Lithotritie par laser/instrumentation , Fibres optiques , Acoustique , Conception d'appareillage , Verre , Pression
2.
Phys Rev Lett ; 105(7): 078101, 2010 Aug 13.
Article de Anglais | MEDLINE | ID: mdl-20868077

RÉSUMÉ

The interaction of laser-generated tandem microbubble (maximum diameter of about 50 µm) with single (rat mammary carcinoma) cells is investigated in a 25-µm liquid layer. Antiphase and coupled oscillation of the tandem microbubble leads to the formation of alternating, directional microjets (with max microstreaming velocity of 10 m/s) and vortices (max vorticity of 350 000 s{-1}) in opposite directions. Localized and directional membrane poration (200 nm to 2 µm in pore size) can be produced by the tandem microbubble in an orientation and proximity-dependent manner, which is absent from a single oscillating microbubble of comparable size and at the same stand-off distance.


Sujet(s)
Membrane cellulaire/métabolisme , Microbulles , Animaux , Transport biologique , Lignée cellulaire tumorale , Hydrodynamique , Microscopie , Imagerie moléculaire , Porosité , Rats
3.
Phys Rev E Stat Nonlin Soft Matter Phys ; 74(4 Pt 2): 046304, 2006 Oct.
Article de Anglais | MEDLINE | ID: mdl-17155170

RÉSUMÉ

The interaction of laser-generated single inertial bubbles (collapse time = 121 mus) near a silicon rubber membrane with a shock wave (55 MPa in peak pressure and 1.7 mus in compressive pulse duration) is investigated. The interaction leads to directional, forced asymmetric collapse of the bubble with microjet formation toward the surface. Maximum jet penetration into the membrane is produced during the bubble collapse phase with optimal shock wave arrival time and stand-off distance. Such interaction may provide a unique acoustic means for in vivo microinjection, applicable to targeted delivery of macromolecules and gene vectors to biological tissues.


Sujet(s)
Gaz/composition chimique , Gaz/effets des radiations , Membrane artificielle , Microbulles , Sonication , Eau/composition chimique , Élasticité , Propriétés de surface
4.
Phys Rev Lett ; 95(3): 034501, 2005 Jul 15.
Article de Anglais | MEDLINE | ID: mdl-16090745

RÉSUMÉ

The interaction of a lithotripter shock wave (LSW) with laser-generated single vapor bubbles in water is investigated using high-speed photography and pressure measurement via a fiber-optic probe hydrophone. The interaction leads to nonspherical collapse of the bubble with secondary shock wave emission and microjet formation along the LSW propagation direction. The maximum pressure amplification is produced during the collapse phase of the bubble oscillation when the compressive pulse duration of the LSW matches with the forced collapse time of the bubble.


Sujet(s)
Ondes de choc de haute énergie , Lithotritie par laser , Science des ultrasons , Lasers , Lithotritie par laser/instrumentation , Phénomènes physiques , Physique
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