Experimental Study of a Simulated Blood Flow Velocity Measurement System via Very-High-Frequency Ultrasound

Xiaochun Wang, Sheng Zhou, Yanqun Wang, Jianjun Ji, Jun Yang
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引用次数: 1

Abstract

To design and implement a simulated blood flow velocity measurement system via very-high-frequency (VHF)ultrasound, which can be used to complete an experimental study that simulates the real-time detection of blood flow information from human superficial organs. We prepared a blood phantom that was composed of nylon particles, pure water, glycerol, dextran and non-ionic surfactant. The experimental platform of this system included a simulated blood circulation system consisting of a medical injection pump for controlling the flow velocity, a medical silicone tube, and a simulated blood phantom; a single pulse, mechanical, linear scanning probe with an operation frequency of 50 MHz; the ultrasound echo signal acquisition circuit of the slave computer; and the VHF ultrasound blood flow imaging system composed of the host computer modules. The transducer was placed approximately 9 mm above the simulated blood vessel, and the direction of blood flow was same to the scanning direction of the probe. The pushing speed of the injection pump was adjusted to obtain the simulated blood imaging near the focal area. The acoustic characteristics of the homemade blood phantom were nearly unchanged for 150 days, which met the requirements of experimental research. According to the imaging results of the simulated blood flow at various flow velocities, the red blood cell imaging particles are large and the number is small when the flow velocity is low, and the red blood cell imaging particles are small and the number is large when the flow velocity is high. The directly proportional relationship between the number of red blood cell imaging particles of the simulated blood and the blood flow velocity can preliminarily be obtained by the designed blood flow velocity measurement system via VHF ultrasound, and the blood flow velocity can be determined accordingly.
甚高频超声模拟血流速度测量系统的实验研究
设计并实现一种甚高频(VHF)超声模拟血流速度测量系统,用于完成模拟人体浅表器官血流信息实时检测的实验研究。我们制备了由尼龙颗粒、纯水、甘油、葡聚糖和非离子表面活性剂组成的血液幻影。该系统的实验平台包括由控制流速的医用注射泵、医用硅胶管和模拟血模组成的模拟血液循环系统;工作频率为50mhz的单脉冲机械线性扫描探头;从机超声回波信号采集电路;以及由上位机模块组成的甚高频超声血流成像系统。换能器放置在模拟血管上方约9mm处,血流方向与探头扫描方向一致。通过调整注射泵的推进速度,获得病灶附近的模拟血液成像。自制血模的声学特性在150天内基本保持不变,满足实验研究的要求。从模拟血流在不同流速下的成像结果可以看出,流速低时,红细胞成像颗粒大而数量少,流速高时,红细胞成像颗粒小而数量多。通过所设计的VHF超声血流速度测量系统,可以初步得到模拟血液中红细胞成像颗粒数与血流速度的成正比关系,并据此确定血流速度。
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