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Doppler optical coherence tomography in cardiovascular physiology

机译:心血管生理学中的多普勒光学相干断层扫描

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The study of flow dynamics in complex geometry vessels is highly important in many biomedical applications where the knowledge of the mechanic interactions between the moving fluid and the housing media plays a key role for the determination of the parameters of interest, including the effect of blood flow on the possible rupture of atherosclerotic plaques. Doppler Optical Coherence Tomography (DOCT), as a functional extension of Optical Coherence Tomography (OCT), is an optic, non-contact, non-invasive technique able to achieve detailed analysis of the flow/vessel interactions. It allows simultaneous high resolution imaging (10 μm typical) of the morphology and composition of the vessel and determination of the flow velocity distribution along the measured cross-section. We applied DOCT system to image high-resolution one-dimensional and multi-dimensional velocity distribution profiles of Newtonian and non-Newtonian fluids flowing in vessels with complex geometry, including Y-shaped and T-shaped vessels, vessels with aneurism, bifurcated vessels with deployed stent and scaffolds. The phantoms were built to mimic typical shapes of human blood vessels, enabling preliminary analysis of the interaction between flow dynamics and the (complex) geometry of the vessels and also to map the related velocity profiles at several inlet volume flow rates. Feasibility studies for quantitative observation of the turbulence of flows arising within the complex geometry vessels are discussed. In addition, DOCT technique was also applied for monitoring cerebral mouse blood flow in vivo. Two-dimensional DOCT images of complex flow velocity profiles in blood vessel phantoms and in vivo sub-cranial mouse blood flow velocities distributions are presented.
机译:复杂几何血管中的流动动力学的研究在许多生物医学应用中非常重要,其中移动流体与壳体介质之间的机械相互作用的知识在确定感兴趣的参数起作用的关键作用,包括血流的效果关于动脉粥样硬化斑块的可能破裂。多普勒光学相干断层扫描(DOVE)作为光学相干断层扫描(OCT)的功能延伸,是光学,非接触式非侵入性技术,能够实现流量/血管相互作用的详细分析。它允许血管的形态和组成的同时高分辨率成像(10μm典型)和沿着测量的横截面测定流速分布。我们应用Doct系统到牛顿和非牛顿流体的高分辨率一维和多维速度分布型材,其流动的血管流动,具有复杂的几何形状,包括Y形和T形容器,具有动脉主义的血管,分叉容器部署支架和脚手架。体模建到人体血管的模拟典型的形状,使流动动力学和血管的(复杂的)几何形状和还映射在若干入口体积流率相关的速度分布之间的相互作用的初步分析。讨论了用于定量观察复杂几何血管内产生的流动湍流的可行性研究。此外,Doct技术也用于监测体内脑小鼠血流。介绍了血管幽灵和体内颅级小鼠血流速度分布的复杂流速分布的二维Doct图像。

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