• DocumentCode
    1254228
  • Title

    Optical measurement of ultrasonic Poynting and velocity vector fields

  • Author

    Pitts, Todd A. ; Greenleaf, James F.

  • Author_Institution
    Accent Opt. Technol., Albuquerque, NM, USA
  • Volume
    49
  • Issue
    2
  • fYear
    2002
  • Firstpage
    193
  • Lastpage
    203
  • Abstract
    This report describes a method for estimating several wide bandwidth ultrasonic field parameters from optical measurements of the local, acoustically induced, refractive index perturbation in water. These parameters include Poynting and particle velocity vector fields as well as pressure and density fields at any temporal delay under mild (forward-propagating) assumptions on the angular plane-wave spectrum of the ultrasound field. A sampling theorem is derived stating that two complete measurements of the three-dimensional pressure field separated in time by /spl Delta/t allow release of the forward-propagating assumption for every acoustic wave number k satisfying k /spl ne/ n/spl pi//(c/spl Delta/t), where c is the acoustic wave speed in the medium and n an integer greater than zero. The approach provides detailed measurements of very general ultrasound fields. Two optical measurement methods that acquire the Radon transform of the three-dimensional refractive index perturbation are briefly reviewed. It is shown that the Radon transform of the field itself satisfies a two-dimensional wave equation and may be propagated independently forward or backward in time under a source-free model. Conversely, the Radon transform of the ultrasound field measurement at several known time delays provides a means of applying a filter to the data based on known ultrasound propagation models. Each two-dimensional distribution may be propagated to a common time point and the ensemble averaged, thus incorporating the propagation model into the measurement. We support the presented theory with several experiments.
  • Keywords
    Radon transforms; acoustic field; acoustic intensity measurement; acousto-optical effects; refractive index; sampling methods; ultrasonic velocity measurement; Radon transform; acoustic wave speed; acoustically induced refractive index perturbation; angular plane-wave spectrum; density fields; forward-propagating acoustic wave; optical measurement; optical measurements; particle velocity vector fields; pressure fields; sampling theorem; source-free model; temporal delay; three-dimensional refractive index perturbation; two-dimensional distribution; two-dimensional wave equation; ultrasonic Poynting vector fields; ultrasound field; velocity vector fields; water; wide bandwidth ultrasonic field parameters; Acoustic measurements; Optical filters; Optical refraction; Optical variables control; Refractive index; Time measurement; Transforms; Ultrasonic imaging; Ultrasonic variables measurement; Velocity measurement;
  • fLanguage
    English
  • Journal_Title
    Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-3010
  • Type

    jour

  • DOI
    10.1109/58.985704
  • Filename
    985704