TISSUE-RESPONSE TO MECHANICAL VIBRATIONS FOR SONOELASTICITY IMAGING

被引:369
作者
PARKER, KJ
HUANG, SR
MUSULIN, RA
LERNER, RM
机构
[1] Rochester Center for Biomedical Ultrasound, University of Rochester, Rochester
关键词
Elastic constants; Elasticity; Finite element analysis; Sonoelasticity; Tissue characterization; Tumor detection; Young's modulus;
D O I
10.1016/0301-5629(90)90003-U
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
The goal of "sonoelasticity imaging" is to differentiate between normal soft tissues and hard lesions. This is done by measuring and then displaying the ultrasound Doppler spectrum of regions within tissues which are mechanically forced with low frequency (20-1000 Hz) vibrations. The resolution and sensitivity of the technique ultimately rest on the spatial resolution of ultrasound Doppler detection, the low frequency mechanical properties of tissues, and the vibration response of layered, inhomogeneous regions with hard tumor inclusions and complicated boundary conditions set by the presence of skin, bones and other regions. An initial investigation has measured some tissue stiffness parameters, and applied these in a NASTRAN finite element analysis to simulate a prostate tumor in the pelvic cavity. The measurements show a wide separation between the elastic modulus of tumors and soft tissues such as muscle and prostate. NASTRAN analyses show the ability to delineate regions of different elasticity based on the pattern of vibration amplitudes. The ability to change vibration frequency within the 100-300 Hz band seems particularly helpful in simulations and experiments which visualize small stiff inclusions in tissues. Preliminary results support the postulate that sonoelasticity imaging can provide useful information concerning tissue properties that are not otherwise obtainable. © 1990.
引用
收藏
页码:241 / 246
页数:6
相关论文
共 12 条
[1]  
Crandall S. H., 1978, INTRO MECHANICS SOLI, P286
[2]  
FUNG YC, 1981, BIOMECHANICS
[3]  
Krouskop T A, 1987, J Rehabil Res Dev, V24, P1
[4]  
LERNER R, 1988, ACOUST IMAGING, P317
[5]   SONOELASTICITY IMAGES DERIVED FROM ULTRASOUND SIGNALS IN MECHANICALLY VIBRATED TISSUES [J].
LERNER, RM ;
HUANG, SR ;
PARKER, KJ .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1990, 16 (03) :231-239
[6]  
LERNER RM, 1987, 7TH P EUR COMM WORKS
[7]   ULTRASOUND PROPAGATION IN ANISOTROPIC SOFT-TISSUES - THE APPLICATION OF LINEAR ELASTIC THEORY [J].
LEVINSON, SF .
JOURNAL OF BIOMECHANICS, 1987, 20 (03) :251-+
[8]  
OESTREICHER HL, 1951, J ACOUST SOC AM, V23, P707, DOI 10.1121/1.1906828
[9]   APPLICATION OF FOURIER-ANALYSIS TO CLINICAL-STUDY OF PATTERNS OF TISSUE MOVEMENT [J].
TRISTAM, M ;
BARBOSA, DC ;
COSGROVE, DO ;
BAMBER, JC ;
HILL, CR .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1988, 14 (08) :695-707
[10]   ULTRASONIC STUDY OF INVIVO KINETIC CHARACTERISTICS OF HUMAN-TISSUES [J].
TRISTAM, M ;
BARBOSA, DC ;
COSGROVE, DO ;
NASSIRI, DK ;
BAMBER, JC ;
HILL, CR .
ULTRASOUND IN MEDICINE AND BIOLOGY, 1986, 12 (12) :927-937