Non-contact measurement of propagation speed in tissue-mimicking phantom using pass-through airborne ultrasound

被引:24
作者
Hirata, Shinnosuke [1 ]
Haritaipan, Lalita [1 ]
Hoshiba, Kotaro [1 ]
Hachiya, Hiroyuki [1 ]
Niimi, Nobuo [2 ]
机构
[1] Tokyo Inst Technol, Dept Mech & Control Engn, Meguro Ku, Tokyo 1528552, Japan
[2] NIPPON SIGMAX Co Ltd, Shinjuku Ku, Tokyo 1636033, Japan
基金
日本学术振兴会;
关键词
WAVE-PROPAGATION; CANCELLOUS BONE; MODEL;
D O I
10.7567/JJAP.53.07KC17
中图分类号
O59 [应用物理学];
学科分类号
摘要
The elastic properties of human tissues can be quantitatively evaluated from the ultrasonic propagation speed in tissues. To effectively propagate ultrasound in human tissues, ultrasonic transducers are typically brought into contact with tissue surfaces. In this study, the non-contact evaluation of human tissues using pass-through airborne ultrasound has been proposed. When airborne ultrasound propagates and passes through tissues, the pass-through wave is extremely attenuated. To detect the attenuated pass-through wave in the received signal, the signal-to-noise ratio (SNR) of the received signal is improved by pulse compression using a higher-order M-sequence in the proposed method. In this paper, the estimation of ultrasonic propagation speeds in tissue-mimicking phantoms is described. The urethane-rubber phantom and solutions of ethanol in water are used as the phantoms. The time of flight (TOF) of the pass-through wave in the phantom is determined from the wave front. The propagation speed in the phantom is estimated using the determined TOF. Propagation speeds in the urethane-rubber phantom and ethanol solutions can be estimated within errors of 3 and 2% in experiments. (C) 2014 The Japan Society of Applied Physics
引用
收藏
页数:6
相关论文
共 15 条
[1]  
BLACK DM, 1992, J BONE MINER RES, V7, P633
[2]   Frequency dependence of ultrasonic backscattering in cancellous bone:: Autocorrelation model and experimental results [J].
Chaffaï, S ;
Roberjot, V ;
Peyrin, F ;
Berger, G ;
Laugier, P .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2000, 108 (05) :2403-2411
[3]   Application of the Biot model to ultrasound in bone: Direct problem [J].
Fellah, Zine E. A. ;
Sebaa, Naima ;
Fellah, Mohamed ;
Mitri, Farid G. ;
Ogam, Erick ;
Lauriks, Walter ;
Depollier, Claude .
IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2008, 55 (07) :1508-1515
[4]  
Fukui K, 2012, JPN J APPL PHYS, V51, DOI [10.1143/JJAP.51.07GF20, 10.1143/JJAP.51.07GE20]
[5]  
Hirata S., 2013, P 2013 IEEE INT ULTR, P990
[6]   Ultrasonic wave propagation in bovine cancellous bone [J].
Hosokawa, A ;
Otani, T .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1997, 101 (01) :558-562
[7]  
Langton C M, 1984, Eng Med, V13, P89, DOI 10.1243/EMED_JOUR_1984_013_022_02
[8]  
Larionov N. I., 1956, PRIMENENIE ULTRAAKUS, V3, P31
[9]   Tomographic Measurement of Vortex Air Flow Field Using Multichannel Transmission and Reception of Coded Acoustic Wave Signals [J].
Li, Haiyue ;
Takata, Syogo ;
Yamada, Akira .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2011, 50 (07)
[10]   Trial of Human Bone Cross-Sectional Imaging In vivo, Using Ultrasonic Echo Waves [J].
Mano, Isao ;
Horii, Kaoru ;
Matsukawa, Mami ;
Otani, Takahiko .
JAPANESE JOURNAL OF APPLIED PHYSICS, 2013, 52 (07)