DocumentCode :
1554119
Title :
Optical phase contrast measurement of ultrasonic fields
Author :
Pitts, Todd A. ; Sagers, Aaron ; Greenleaf, James F.
Author_Institution :
Accent Opt. Technol., Albuquerque, NM, USA
Volume :
48
Issue :
6
fYear :
2001
Firstpage :
1686
Lastpage :
1694
Abstract :
This report describes an optical phase contrast imaging technique for the measurement of wide bandwidth ultrasound fields in water. In this method, a collimated optical wavefront (/spl lambda//sub l/ = 810 nm) impinges on a wide bandwidth ultrasound pulse. The method requires that refractive index perturbations induced by the ultrasound field be sufficiently small. Specifically, on exit from the acoustic field, the phase of the optical wavefront must be proportional to the ray sum of local density taken in the direction of propagation of the incident optical wave. A similar restriction is placed on the dimensions of the ultrasound pulse. Repeated measurement of this phase as the ultrasound field is rotated through 180/spl deg/ about an axis normal to the direction of propagation of the incident optical wave generates the Radon transform of the ultrasonically induced refractive index perturbation. Standard tomographic reconstruction techniques are used to reconstruct the full three-dimensional refractive index perturbation. A simple two-lens imaging system and an optical signal processing element from phase contrast microscopy provide a method of directly measuring an affine function of the desired optical phase for small optical phase shifts. The piezo- and elasto-optic coefficients (the first partial derivatives of refractive index with respect to density and pressure) relate refractive index to density and pressure via a linear model. The optical measurement method described in this paper provides a direct, quantitative measurement of the piezo- and elasto-optic coefficients (from the density or pressure fields).
Keywords :
Radon transforms; acoustic field; acoustic pulses; acousto-optical effects; optical tomography; piezo-optical effects; refractive index; ultrasonic measurement; underwater sound; 810 nm; Radon transform; affine function; density field; elasto-optic coefficient; image reconstruction; linear model; optical phase contrast tomography; optical signal processing; piezo-optic coefficient; pressure field; three-dimensional refractive index perturbation; two-lens imaging system; ultrasound pulse; underwater ultrasonic field measurement; Acoustic pulses; Bandwidth; Optical imaging; Optical refraction; Optical signal processing; Optical variables control; Phase measurement; Refractive index; Ultrasonic imaging; Ultrasonic variables measurement;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/58.971722
Filename :
971722
Link To Document :
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