DocumentCode
1361171
Title
Ultrasonic field modeling: a comparison of analytical, semi-analytical, and numerical techniques
Author
Kundu, Tribikram ; Placko, Dominique ; Rahani, Ehsan Kabiri ; Yanagita, Tamaki ; Dao, Cac Minh
Author_Institution
Dept. of Civil Eng. & Eng. Mech., Univ. of Arizona, Tucson, AZ, USA
Volume
57
Issue
12
fYear
2010
fDate
12/1/2010 12:00:00 AM
Firstpage
2795
Lastpage
2807
Abstract
Modeling ultrasonic fields in front of a transducer in the presence and absence of a scatterer is a fundamental problem that has been attempted by different techniques: analytical, semi-analytical, and numerical. However, a comprehensive comparison study among these techniques is currently missing in the literature. The objective of this paper is to make this comparison for different ultrasonic field modeling problems with various degrees of difficulty. Four fundamental problems are considered: a flat circular transducer, a flat square transducer, a circular concave transducer, and a point focused transducer (concave lens) in the presence of a cavity. The ultrasonic field in front of a finite-sized transducer can be obtained by Huygens-Fresnel superposition principle that integrates the contributions of several point sources distributed on the transducer face. This integral which is also known as the Rayleigh integral or Rayleigh-Sommerfeld integral (RSI) can be evaluated analytically for obtaining the pressure field variation along the central axis of the transducer for simple geometries, such as a flat circular transducer. The semi-analytical solution is a newly developed mesh-free technique called the distributed point source method (DPSM). The numerical solution is obtained from finite element analysis. Note that the first three problems study the effect of the transducer size and shape, whereas the fourth problem computes the field in presence of a scatterer.
Keywords
acoustic field; finite element analysis; ultrasonic scattering; ultrasonic transducers; Huygens-Fresnel superposition principle; Rayleigh-Sommerfeld integral; circular concave transducer; distributed point source method; finite element analysis; flat circular transducer; flat square transducer; mesh-free technique; point focused transducer; transducer; ultrasonic field modeling; Cavity resonators; Finite element methods; Fresnel reflection; Modeling; Transducers;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2010.1753
Filename
5610565
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