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一种通过超声对大动脉血管壁和血流动力学特性进行无创评估的集成系统。

An integrated system for the non-invasive assessment of vessel wall and hemodynamic properties of large arteries by means of ultrasound.

作者信息

Brands P J, Hoeks A P, Willigers J, Willekes C, Reneman R S

机构信息

Department of Biophysics, Cardiovascular Research Institute Maastricht, Maastricht University, 6200 MD, Maastricht, The Netherlands.

出版信息

Eur J Ultrasound. 1999 Jul;9(3):257-66. doi: 10.1016/s0929-8266(99)00033-6.

Abstract

OBJECTIVES

To integrate methods for non-invasive assessment of vessel wall properties (diastolic diameter, distension waveform and intima-media thickness) and hemodynamic properties (blood flow velocity and shear rate distribution) of large arteries by means of dedicated ultrasound signal processing.

METHODS

we have developed an arterial laboratory (ART-lab) system. ART-lab consists of software running on a standard personal computer, equipped with a data acquisition card for the acquisition of radio frequency (RF) ultrasound signals obtained with a conventional echo scanner. It operates either (1) off-line or (2) in real-time. Real-time operation is restricted to the assessment of vessel wall properties because of limitations in computational power.

RESULTS

This paper provides an overview of ART-lab ultrasound radio frequency data acquisition and dedicated RF-signal processing methods. The capabilities of the system are illustrated with some typical applications.

CONCLUSIONS

ART-lab in real-time mode is a useful tool for monitoring arterial vessel wall dynamics, while off-line it can be employed to investigate the elastic vessel wall properties in combination with hemodynamics, such as blood flow velocity and shear rate distribution.

摘要

目的

通过专用超声信号处理,整合对大动脉血管壁特性(舒张期直径、扩张波形和内膜中层厚度)和血流动力学特性(血流速度和剪切率分布)进行无创评估的方法。

方法

我们开发了一种动脉实验室(ART-lab)系统。ART-lab由在标准个人计算机上运行的软件组成,该计算机配备有数据采集卡,用于采集通过传统超声扫描仪获得的射频(RF)超声信号。它可以(1)离线运行,也可以(2)实时运行。由于计算能力的限制,实时操作仅限于血管壁特性的评估。

结果

本文概述了ART-lab超声射频数据采集和专用射频信号处理方法。通过一些典型应用展示了该系统的功能。

结论

实时模式下的ART-lab是监测动脉血管壁动态的有用工具,而离线时它可用于结合血流动力学(如血流速度和剪切率分布)研究弹性血管壁特性。

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