• DocumentCode
    3608128
  • Title

    Acoustical pulling force of a limited-diffracting annular beam centered on a sphere

  • Author

    Mitri, Farid G.

  • Author_Institution
    Chevron, Santa Fe, NM, USA
  • Volume
    62
  • Issue
    10
  • fYear
    2015
  • fDate
    10/1/2015 12:00:00 AM
  • Firstpage
    1827
  • Lastpage
    1834
  • Abstract
    A rigorous method is developed to investigate the generation of a negative (attracting) force acting in the opposite direction of wave propagation using a limited-diffracting single annular piezo-ring transducer. Based on the Rayleigh-Sommerfeld diffraction integral and the addition theorems for the Legendre and spherical wave functions, the expression for the incident velocity potential field (which is an exact solution of the Helmholtz equation) is derived analytically, and exact closed-form partial-wave series expansions for the incident and scattered fields are obtained without any approximations. The total (incident + scattered) field expression is used to evaluate the time-averaged acoustic radiation force (ARF) on a sphere centered on the beam´s axis in a nonviscous fluid. Numerical predictions for the scattering and ARF performed with particular emphasis on the annular-ring´s radial thickness, the distance separating the sphere from the acoustic source, the size of the transducer, as well as the sphere´s elastic properties, reveal some conditions where a pulling axial ARF directed toward the annular ring-source surface arises. The simplicity and reliability of the annular-ring geometry demonstrated here provides a substantial solution with widespread applications in the experimental design of acoustical limited-diffracting beams operating over an extended axial depth-of-field for contactless and dexterous particle manipulation.
  • Keywords
    Helmholtz equations; acoustic field; acoustic radiators; acoustic transducers; acoustic wave diffraction; acoustic wave propagation; acoustic wave scattering; acoustic wave velocity; elasticity; wave functions; Helmholtz equation; Legendre functions; Rayleigh-Sommerfeld diffraction integral; acoustic source; acoustical pulling force; annular ring-source surface; annular-ring geometry; annular-ring radial thickness; axial depth-of-field; beam axis; contactless particle manipulation; dexterous particle manipulation; exact closed-form partial-wave series expansions; incident fields; incident velocity potential field; limited-diffracting annular beam; limited-diffracting single annular piezoring transducer; nonviscous fluid; rigorous method; scattered fields; sphere elastic properties; spherical wave functions; time-averaged acoustic radiation force; wave propagation; Acoustic beams; Acoustics; Force; Motion pictures; Particle beams; Scattering; Transducers;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/TUFFC.2014.006961
  • Filename
    7296571