Parallel Transmit Beamforming Using Orthogonal Frequency Division Multiplexing Applied to Harmonic Imaging-A Feasibility Study

被引:30
作者
Demi, Libertario [1 ]
Verweij, Martin D. [1 ]
van Dongen, Koen W. A. [1 ,2 ,3 ]
机构
[1] Delft Univ Technol, Lab Acoust Wavefield Imaging, Fac Sci Appl, NL-2600 AA Delft, Netherlands
[2] Delft Univ Technol, Lab Electromagnet Res, Fac Informat Technol & Syst, NL-2600 AA Delft, Netherlands
[3] Delft Univ Technol, Fac Sci Appl, Lab Acoust Imaging & Sound Control, NL-2600 AA Delft, Netherlands
关键词
FIELDS;
D O I
10.1109/TUFFC.2012.2476
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Real-time 2-D or 3-D ultrasound imaging systems are currently used for medical diagnosis. To achieve the required data acquisition rate, these systems rely on parallel beamforming, i.e., a single wide-angled beam is used for transmission and several narrow parallel beams are used for reception. When applied to harmonic imaging, the demand for high-amplitude pressure wave fields, necessary to generate the harmonic components, conflicts with the use of a wide-angled beam in transmission because this results in a large spatial decay of the acoustic pressure. To enhance the amplitude of the harmonics, it is preferable to do the reverse: transmit several narrow parallel beams and use a wide-angled beam in reception. Here, this concept is investigated to determine whether it can be used for harmonic imaging. The method proposed in this paper relies on orthogonal frequency division multiplexing (OFDM), which is used to create distinctive parallel beams in transmission. To test the proposed method, a numerical study has been performed, in which the transmit, receive, and combined beam profiles generated by a linear array have been simulated for the second-harmonic component. Compared with standard parallel beamforming, application of the proposed technique results in a gain of 12 dB for the main beam and in a reduction of the side lobes. Experimental verification in water has also been performed. Measurements obtained with a single-element emitting transducer and a hydrophone receiver confirm the possibility of exciting a practical ultrasound transducer with multiple Gaussian modulated pulses, each having a different center frequency, and the capability to generate distinguishable second-harmonic components.
引用
收藏
页码:2439 / 2447
页数:9
相关论文
共 22 条
[1]  
Alard M., 1987, EBU TECH REV, P47
[2]  
Averkiou MA, 1997, 1997 IEEE ULTRASONICS SYMPOSIUM PROCEEDINGS, VOLS 1 & 2, P1561, DOI 10.1109/ULTSYM.1997.663294
[3]   Native tissue imaging at superharmonic frequencies [J].
Bouakaz, A ;
de Jong, N .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2003, 50 (05) :496-506
[4]   Super harmonic imaging: A new imaging technique for improved contrast detection [J].
Bouakaz, A ;
Frigstad, S ;
Ten Cate, FJ ;
de Jong, N .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2002, 28 (01) :59-68
[5]   Finite amplitude distortion-based inhomogeneous pulse echo ultrasonic imaging [J].
Christopher, T .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1997, 44 (01) :125-139
[6]  
Cobbold R. S. C., 2007, FDN BIOMEDICAL ULTRA, P439
[7]   ACOUSTICAL IMAGE-RECONSTRUCTION IN PARALLEL-PROCESSING ANALOG ELECTRONIC SYSTEMS [J].
DELANNOY, B ;
TORGUET, R ;
BRUNEEL, C ;
BRIDOUX, E ;
ROUVAEN, JM ;
LASOTA, H .
JOURNAL OF APPLIED PHYSICS, 1979, 50 (05) :3153-3159
[8]  
Delannoy B, 1979, ECHOCARDIOGR-J CARD, V1, p[447, 1273, 1984]
[9]   A contrast source method for nonlinear acoustic wave fields in media with spatially inhomogeneous attenuation [J].
Demi, L. ;
van Dongen, K. W. A. ;
Verweij, M. D. .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2011, 129 (03) :1221-1230
[10]  
Hamilton M. F., 2008, NONLINEAR ACOUSTICS, P79