DocumentCode :
1304909
Title :
Design aspects of focal beams from high-intensity arrays
Author :
Stephens, Douglas N. ; Kruse, Dustin E. ; Qin, Shengping ; Ferrara, Katherine W.
Author_Institution :
Univ. of California, Davis, CA, USA
Volume :
58
Issue :
8
fYear :
2011
fDate :
8/1/2011 12:00:00 AM
Firstpage :
1590
Lastpage :
1602
Abstract :
As the applications of ultrasonic thermal therapies expand, the design of the high-intensity array must address both the energy delivery of the main beam and the character and relevance of off-target beam energy. We simulate the acoustic field performance of a selected set of circular arrays organized by array format, including flat versus curved arrays, periodic versus random arrays, and center void diameter variations. Performance metrics are based on the -3-dB focal main lobe (FML) positioning range, axial grating lobe (AGL) temperatures, and side lobe levels. Using finite-element analysis, we evaluate the relative heating of the FML and the AGLs. All arrays have a maximum diameter of 100λ, with element count ranging from 64 to 1024 and continuous wave frequency of 1.5 MHz. First, we show that a 50% spherical annulus produces focus beam side lobes which decay as a function of lateral distance at nearly 87% of the exponential rate of a full aperture. Second, for the arrays studied, the efficiency of power delivery over the -3-dB focus positioning range for spherical arrays is at least 2-fold greater than for flat arrays; the 256-element case shows a 5-fold advantage for the spherical array. Third, AGL heating can be significant as the focal target is moved to its distal half-intensity depth from the natural focus. Increasing the element count of a randomized array to 256 elements decreases the AGL-to-FML heating ratio to 0.12 at the distal half-intensity depth. Further increases in element count yield modest improvements. A 49% improvement in the AGL-to-peak heating ratio is predicted by using the Sumanaweera spiral element pattern with randomization.
Keywords :
biomedical transducers; biothermics; finite element analysis; ultrasonic therapy; ultrasonic transducer arrays; AGL temperatures; AGL-FML heating ratio; FML positioning range; Sumanaweera spiral element pattern; acoustic field performance simulation; array format; axial grating lobe temperatures; circular arrays; continuous wave frequency; curved arrays; enter void diameter variations; finite element analysis; flat arrays; focal beam design aspects; focal main lobe positioning range; frequency 1.5 MHz; high intensity array design; high intensity arrays; main beam energy delivery; off target beam energy; periodic arrays; power delivery efficiency; random arrays; side lobe level; ultrasonic thermal therapies; Acoustic arrays; Acoustic beams; Acoustics; Apertures; Brain modeling; Gratings; Heating; Computer Simulation; Equipment Design; Finite Element Analysis; Hot Temperature; Ultrasonic Therapy;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2011.1986
Filename :
5995216
Link To Document :
بازگشت