Literature DB >> 17225382

Axial radiation force of a bessel beam on a sphere and direction reversal of the force.

Philip L Marston1.   

Abstract

An expression is derived for the radiation force on a sphere placed on the axis of an ideal acoustic Bessel beam propagating in an inviscid fluid. The expression uses the partial-wave coefficients found in the analysis of the scattering when the sphere is placed in a plane wave traveling in the same external fluid. The Bessel beam is characterized by the cone angle beta of its plane wave components where beta=0 gives the limiting case of an ordinary plane wave. Examples are found for fluid spheres where the radiation force reverses in direction so the force is opposite the direction of the beam propagation. Negative axial forces are found to be correlated with conditions giving reduced backscattering by the beam. This condition may also be helpful in the design of acoustic tweezers for biophysical applications. Other potential applications include the manipulation of objects in microgravity. Islands in the (ka, beta) parameter plane having a negative radiation force are calculated for the case of a hexane drop in water. Here k is the wave number and a is the drop radius. Low frequency approximations to the radiation force are noted for rigid, fluid, and elastic solid spheres in an inviscid fluid.

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Year:  2006        PMID: 17225382     DOI: 10.1121/1.2361185

Source DB:  PubMed          Journal:  J Acoust Soc Am        ISSN: 0001-4966            Impact factor:   1.840


  19 in total

1.  Microparticle trapping in an ultrasonic Bessel beam.

Authors:  Youngki Choe; Jonathan W Kim; K Kirk Shung; Eun Sok Kim
Journal:  Appl Phys Lett       Date:  2011-12-08       Impact factor: 3.791

2.  The mechanism of the attracting acoustic radiation force on a polymer-coated gold sphere in plane progressive waves.

Authors:  F G Mitri; Z E A Fellah
Journal:  Eur Phys J E Soft Matter       Date:  2008-08       Impact factor: 1.890

3.  Acoustic radiation force on an air bubble and soft fluid spheres in ideal liquids: example of a high-order Bessel beam of quasi-standing waves.

Authors:  F G Mitri
Journal:  Eur Phys J E Soft Matter       Date:  2009-05-01       Impact factor: 1.890

4.  Optical theorem for acoustic non-diffracting beams and application to radiation force and torque.

Authors:  Likun Zhang; Philip L Marston
Journal:  Biomed Opt Express       Date:  2013-08-09       Impact factor: 3.732

5.  Noninvasive acoustic manipulation of objects in a living body.

Authors:  Mohamed A Ghanem; Adam D Maxwell; Yak-Nam Wang; Bryan W Cunitz; Vera A Khokhlova; Oleg A Sapozhnikov; Michael R Bailey
Journal:  Proc Natl Acad Sci U S A       Date:  2020-07-06       Impact factor: 11.205

6.  Contactless microparticle control via ultrahigh frequency needle type single beam acoustic tweezers.

Authors:  Chunlong Fei; Ying Li; Benpeng Zhu; Chi Tat Chiu; Zeyu Chen; Di Li; Yintang Yang; K Kirk Shung; Qifa Zhou
Journal:  Appl Phys Lett       Date:  2016-10-27       Impact factor: 3.791

7.  Radiation force of an arbitrary acoustic beam on an elastic sphere in a fluid.

Authors:  Oleg A Sapozhnikov; Michael R Bailey
Journal:  J Acoust Soc Am       Date:  2013-02       Impact factor: 1.840

8.  Microfluidic acoustic trapping force and stiffness measurement using viscous drag effect.

Authors:  Jungwoo Lee; Jong Seob Jeong; K Kirk Shung
Journal:  Ultrasonics       Date:  2012-07-06       Impact factor: 2.890

9.  Ultrahigh frequency lensless ultrasonic transducers for acoustic tweezers application.

Authors:  Kwok Ho Lam; Hsiu-Sheng Hsu; Ying Li; Changyang Lee; Anderson Lin; Qifa Zhou; Eun Sok Kim; Kirk Koping Shung
Journal:  Biotechnol Bioeng       Date:  2012-10-16       Impact factor: 4.530

10.  Transverse acoustic trapping using a gaussian focused ultrasound.

Authors:  Jungwoo Lee; Shia-Yen Teh; Abraham Lee; Hyung Ham Kim; Changyang Lee; K Kirk Shung
Journal:  Ultrasound Med Biol       Date:  2010-01-04       Impact factor: 2.998

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