Literature DB >> 30530326

Considerations for Choosing Sensitive Element Size for Needle and Fiber-Optic Hydrophones-Part I: Spatiotemporal Transfer Function and Graphical Guide.

Keith A Wear.   

Abstract

The spatiotemporal transfer function for a needle or reflectance-based fiber-optic hydrophone is modeled as separable into the product of two filters corresponding to frequency-dependent sensitivity and spatial averaging. The separable hydrophone transfer function model is verified numerically by comparison to a more general rigid piston spatiotemporal response model that does not assume separability. Spatial averaging effects are characterized by frequency-dependent "effective" sensitive element diameter, which can be more than double the geometrical sensitive element diameter. The transfer function is tested in simulation using a nonlinear focused pressure wave model based on Gaussian harmonic radial pressure distributions. The pressure wave model is validated by comparing to experimental hydrophone scans of nonlinear beams produced by three source transducers. An analytic form for the spatial averaging filter, applicable to Gaussian harmonic beams, is derived. A second analytic form for the spatial averaging filter, applicable to quadratic harmonic beams, is derived by extending the spatial averaging correction recommended by IEC 62127-1 Annex E to nonlinear signals with multiple harmonics. Both forms are applicable to all hydrophones (not just needle and fiber-optic hydrophones). Simulation analysis performed for a wide variety of transducer geometries indicates that the Gaussian spatial averaging filter formula is more accurate than the quadratic formula over a wider range of harmonics. Additional experimental validation is provided in Part II. Readers who are uninterested in hydrophone theory may skip the theoretical and experimental sections of this paper and proceed to the graphical guide for practical information to inform and support selection of hydrophone sensitive element size (but might be well advised to read the Introduction).

Entities:  

Mesh:

Year:  2018        PMID: 30530326      PMCID: PMC6935508          DOI: 10.1109/TUFFC.2018.2886067

Source DB:  PubMed          Journal:  IEEE Trans Ultrason Ferroelectr Freq Control        ISSN: 0885-3010            Impact factor:   2.725


  71 in total

1.  Cavitation clouds created by shock scattering from bubbles during histotripsy.

Authors:  Adam D Maxwell; Tzu-Yin Wang; Charles A Cain; J Brian Fowlkes; Oleg A Sapozhnikov; Michael R Bailey; Zhen Xu
Journal:  J Acoust Soc Am       Date:  2011-10       Impact factor: 1.840

2.  Characterization of a polymer film optical fiber hydrophone for use in the range 1 to 20 MHz: a comparison with PVDF needle and membrane hydrophones.

Authors:  P C Beard; A M Hurrell; T N Mills
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2000       Impact factor: 2.725

3.  A Fabry-Perot fiber-optic ultrasonic hydrophone for the simultaneous measurement of temperature and acoustic pressure.

Authors:  Paul Morris; Andrew Hurrell; Adam Shaw; Edward Zhang; Paul Beard
Journal:  J Acoust Soc Am       Date:  2009-06       Impact factor: 1.840

4.  Considerations for Choosing Sensitive Element Size for Needle and Fiber-Optic Hydrophones-Part II: Experimental Validation of Spatial Averaging Model.

Authors:  Keith A Wear; Yunbo Liu
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2018-12-10       Impact factor: 2.725

5.  Nonlinear propagation applied to the improvement of resolution in diagnostic medical ultrasound.

Authors:  B Ward; A C Baker; V F Humphrey
Journal:  J Acoust Soc Am       Date:  1997-01       Impact factor: 1.840

6.  Finite-amplitude effects on ultrasound beam patterns in attenuating media.

Authors:  C R Reilly; K J Parker
Journal:  J Acoust Soc Am       Date:  1989-12       Impact factor: 1.840

7.  A Method for Measuring the Directional Response of Ultrasound Receivers in the Range 0.3-80 MHz Using a Laser-Generated Ultrasound Source.

Authors:  James A Guggenheim; Edward Z Zhang; Paul C Beard
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2017-09-29       Impact factor: 2.725

8.  Finite amplitude distortion of the pulsed fields used in diagnostic ultrasound.

Authors:  D R Bacon
Journal:  Ultrasound Med Biol       Date:  1984 Mar-Apr       Impact factor: 2.998

9.  Demonstration of nonlinear acoustical effects at biomedical frequencies and intensities.

Authors:  E L Carstensen; W K Law; N D McKay; T G Muir
Journal:  Ultrasound Med Biol       Date:  1980       Impact factor: 2.998

10.  Ultrasound-mediated cavitation thresholds of liquid perfluorocarbon droplets in vitro.

Authors:  Tonia Giesecke; Kullervo Hynynen
Journal:  Ultrasound Med Biol       Date:  2003-09       Impact factor: 2.998

View more
  11 in total

1.  Considerations for Choosing Sensitive Element Size for Needle and Fiber-Optic Hydrophones-Part II: Experimental Validation of Spatial Averaging Model.

Authors:  Keith A Wear; Yunbo Liu
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2018-12-10       Impact factor: 2.725

2.  Directivity and Frequency-Dependent Effective Sensitive Element Size of Membrane Hydrophones: Theory Versus Experiment.

Authors:  Keith A Wear; Christian Baker; Piero Miloro
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2019-07-24       Impact factor: 2.725

3.  Correction for Hydrophone Spatial Averaging Artifacts for Circular Sources.

Authors:  Keith A Wear; Anant Shah; Christian Baker
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2020-11-24       Impact factor: 2.725

4.  Hydrophone Spatial Averaging Correction for Acoustic Exposure Measurements From Arrays-Part II: Validation for ARFI and Pulsed Doppler Waveforms.

Authors:  Keith A Wear; Anant Shah; Aoife M Ivory; Christian Baker
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2021-02-25       Impact factor: 2.725

5.  Hydrophone Spatial Averaging Correction for Acoustic Exposure Measurements From Arrays-Part I: Theory and Impact on Diagnostic Safety Indexes.

Authors:  Keith A Wear
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2021-02-25       Impact factor: 2.725

6.  Correction for Spatial Averaging Artifacts in Hydrophone Measurements of High-Intensity Therapeutic Ultrasound: An Inverse Filter Approach.

Authors:  Keith A Wear; Samuel M Howard
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2019-06-24       Impact factor: 2.725

7.  Hydrophone Spatial Averaging Artifacts for ARFI Beams from Array Transducers.

Authors:  Keith Wear; Anant Shah; Aoife M Ivory; Christian Baker
Journal:  IEEE Int Ultrason Symp       Date:  2020

8.  Correction for Spatial Averaging Artifacts for Circularly-Symmetric Pressure Beams Measured with Membrane Hydrophones.

Authors:  Keith Wear; Anant Shah; Christian Baker
Journal:  IEEE Int Ultrason Symp       Date:  2020

9.  Spatiotemporal Deconvolution of Hydrophone Response for Linear and Nonlinear Beams-Part I: Theory, Spatial-Averaging Correction Formulas, and Criteria for Sensitive Element Size.

Authors:  Keith A Wear
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2022-03-30       Impact factor: 3.267

10.  Holographic extraction of plane waves from an ultrasound beam for acoustic characterization of an absorbing layer of finite dimensions.

Authors:  Dmitry A Nikolaev; Sergey A Tsysar; Vera A Khokhlova; Wayne Kreider; Oleg A Sapozhnikov
Journal:  J Acoust Soc Am       Date:  2021-01       Impact factor: 1.840

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.