...
首页> 外文期刊>Physics in medicine and biology. >Measurement of flow velocity fields in small vessel-mimic phantoms and vessels of small animals using micro ultrasonic particle image velocimetry (micro-EPIV).
【24h】

Measurement of flow velocity fields in small vessel-mimic phantoms and vessels of small animals using micro ultrasonic particle image velocimetry (micro-EPIV).

机译:使用微超声粒子图像测速仪(micro-EPIV)测量小血管模拟体模和小动物血管中的流速场。

获取原文
获取原文并翻译 | 示例
           

摘要

Determining a multidimensional velocity field within microscale opaque fluid flows is needed in areas such as microfluidic devices, biofluid mechanics and hemodynamics research in animal studies. The ultrasonic particle image velocimetry (EchoPIV) technique is appropriate for measuring opaque flows by taking advantage of PIV and B-mode ultrasound contrast imaging. However, the use of clinical ultrasound systems for imaging flows in small structures or animals has limitations associated with spatial resolution. This paper reports on the development of a high-resolution EchoPIV technique (termed as micro-EPIV) and its application in measuring flows in small vessel-mimic phantoms and vessels of small animals. Phantom experiments demonstrate the validity of the technique, providing velocity estimates within 4.1% of the analytically derived values with regard to the flows in a small straight vessel-mimic phantom, and velocity estimates within 5.9% of the computationally simulated values with regard to the flows in a small stenotic vessel-mimic phantom. Animal studies concerning arterial and venous flows of living rats and rabbits show that the micro-EPIV-measured peak velocities within several cardiac cycles are about 25% below the values measured by the ultrasonic spectral Doppler technique. The micro-EPIV technique is able to effectively measure the flow fields within microscale opaque fluid flows.
机译:在动物研究中的微流体装置,生物流体力学和血液动力学研究等领域,需要确定微尺度不透明流体流中的多维速度场。超声粒子图像测速(EchoPIV)技术适合通过利用PIV和B模式超声对比成像来测量不透明流量。然而,使用临床超声系统对小结构或动物中的流进行成像具有与空间分辨率有关的局限性。本文报道了高分辨率EchoPIV技术(称为微型EPIV)的发展及其在测量小血管模拟体模和小动物血管中的流量的应用。幻影实验证明了该技术的有效性,它提供的速度估算值在小笔直的血管模拟体模中的分析得出的值的4.1%以内,速度估算值在计算的仿真值的5.9%以内在狭窄的狭窄血管模拟体模中。有关活体大鼠和兔子的动脉和静脉血流的动物研究表明,在几个心动周期内,微EPIV测得的峰值速度比超声频谱多普勒技术测得的值低约25%。微型EPIV技术能够有效地测量微型不透明流体流中的流场。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号