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壁面切变率测量:一种新方法的多物理场模拟验证。

Wall Shear Rate Measurement: Validation of a New Method Through Multiphysics Simulations.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2017 Jan;64(1):66-77. doi: 10.1109/TUFFC.2016.2608442.

DOI:10.1109/TUFFC.2016.2608442
PMID:28092504
Abstract

Wall shear stress is known to affect the vessel endothelial function and to be related to important pathologies like the development of atherosclerosis. It is defined as the product of the blood viscosity by the blood velocity gradient at the wall position, i.e., the wall shear rate (WSR). The WSR measurement is particularly challenging in important cardiovascular sites, like the carotid bifurcation, because of the related complex flow configurations characterized by high spatial and temporal gradients, wall movement, and clutter noise. Moreover, accuracy of any method for WSR measurement can be effectively tested only if reliable gold standard WSR values, considering all the aforementioned disturbing effects, are available. Unfortunately, these requirements are difficult to achieve in a physical phantom, so that the accuracy test of the novel WSR measurement methods was so far limited to straight pipes and/or similar idealistic configurations. In this paper, we propose a new method for WSR measurement and its validation based on a mathematical model of the carotid bifurcation, which, exploiting fluid-structure simulations, is capable of reproducing realistic flow configuration, wall movement, and clutter noise. In particular, the profile near the wall, not directly measurable because affected by clutter, is estimated through a power-law fitting and compared with the gold standard provided by the model. In this condition, the WSR measurements featured an accuracy of ±20 %. A preliminary test on a volunteer confirmed the feasibility of the WSR method for in vivo application.

摘要

壁面切应力已知会影响血管内皮功能,并与重要的病理学有关,如动脉粥样硬化的发展。它被定义为血液粘度与壁面位置的血流速度梯度的乘积,即壁面剪切率 (WSR)。在颈动脉分叉等重要心血管部位,WSR 的测量特别具有挑战性,因为相关的复杂流动结构具有高时空梯度、壁面运动和杂波噪声。此外,只有在可靠的黄金标准 WSR 值(考虑到所有上述干扰效应)可用的情况下,才能有效地测试任何 WSR 测量方法的准确性。不幸的是,这些要求在物理模型中难以实现,因此新型 WSR 测量方法的准确性测试迄今为止仅限于直管和/或类似理想化的配置。在本文中,我们提出了一种基于颈动脉分叉的数学模型的新的 WSR 测量方法及其验证,该模型利用流固耦合模拟能够再现真实的流动结构、壁面运动和杂波噪声。特别是,由于受到杂波的影响而无法直接测量的壁面附近的轮廓通过幂律拟合进行估计,并与模型提供的黄金标准进行比较。在这种情况下,WSR 测量的准确性为±20%。对志愿者的初步测试证实了该 WSR 方法在体内应用的可行性。

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