血压
动脉硬化
波形
生物医学工程
弹性成像
舒张期
超声波
材料科学
横波
群速度
刚度
剪切模量
医学
脉冲波速
色散(光学)
心脏病学
兰姆波
内科学
剪切(地质)
波传播
放射科
物理
光学
量子力学
电压
复合材料
作者
Guo-Yang Li,Yuxuan Jiang,Yang Zheng,Weiqiang Xu,Zhaoyi Zhang,Yanping Cao
出处
期刊:IEEE Transactions on Medical Imaging
[Institute of Electrical and Electronics Engineers]
日期:2022-01-07
卷期号:41 (6): 1510-1519
被引量:5
标识
DOI:10.1109/tmi.2022.3141613
摘要
The clinical and economic burdens of cardiovascular diseases pose a global challenge. Growing evidence suggests an early assessment of arterial stiffness can provide insights into the pathogenesis of cardiovascular diseases. However, it remains difficult to quantitatively characterize local arterial stiffness in vivo. Here we utilize guided axial waves continuously excited and detected by ultrasound to probe local blood pressures and mechanical properties of common carotid arteries simultaneously. In a pilot study of 17 healthy volunteers, we observe a ∼ 20 % variation in the group velocities of the guided axial waves (5.16 ± 0.55 m/s in systole and 4.31 ± 0.49 m/s in diastole) induced by the variation of the blood pressures. A linear relationship between the square of group velocity and blood pressure is revealed by the experiments and finite element analysis, which enables us to measure the waveform of the blood pressures by the group velocities. Furthermore, we propose a wavelet analysis-based method to extract the dispersion relations of the guided axial waves. We then determined the shear modulus by fitting the dispersion relations in diastole with the leaky Lamb wave model. The average shear modulus of all the volunteers is 166.3 ± 32.8 kPa. No gender differences are found. This study shows the group velocity and dispersion relation of the guided axial waves can be utilized to probe blood pressure and arterial stiffness locally in a noninvasive manner and thus promising for early diagnosis of cardiovascular diseases.
科研通智能强力驱动
Strongly Powered by AbleSci AI