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Fabrication of rigid and flexible refractive-index-matched flow phantoms for flow visualisation and optical flow measurements

机译:刚性和柔性折射率匹配的流动模型的制造,用于流动可视化和光流量测量

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A method for the construction of both rigid and compliant (flexible) transparent flow phantoms of biological flow structures, suitable for PIV and other optical flow methods with refractive-index-matched working fluid is described in detail. Methods for matching the in vivo compliance and elastic wave propagation wavelength are presented. The manipulation of MRI and CT scan data through an investment casting mould is described. A method for the casting of bubble-free phantoms in silicone elastomer is given. The method is applied to fabricate flexible phantoms of the carotid artery (with and without stenosis), the carotid artery bifurcation (idealised and patient-specific) and the human upper airway (nasal cavity). The fidelity of the phantoms to the original scan data is measured, and it is shown that the cross-sectional error is less than 5% for phantoms of simple shape but up to 16% for complex cross-sectional shapes such as the nasal cavity. This error is mainly due to the application of a PVA coating to the inner mould and can be reduced by shrinking the digital model. Sixteen per cent variation in area is less than the natural patient to patient variation of the physiological geometries. The compliance of the phantom walls is controlled within physiologically realistic ranges, by choice of the wall thickness, transmural pressure and Young’s modulus of the elastomer. Data for the dependence of Young’s modulus on curing temperature are given for Sylgard 184. Data for the temperature dependence of density, viscosity and refractive index of the refractive-index-matched working liquid (i.e. water–glycerol mixtures) are also presented.
机译:详细描述了一种构造生物流动结构的刚性和柔顺(柔性)透明流动体模的方法,该方法适用于PIV和其他具有折射率匹配的工作流体的光流动方法。提出了匹配体内顺应性和弹性波传播波长的方法。描述了通过熔模铸造模具进行MRI和CT扫描数据的操作。给出了一种在有机硅弹性体中浇铸无气泡模型的方法。该方法适用于制造颈动脉的柔性体模(有或没有狭窄),颈动脉分叉(理想化和患者特定)以及人上呼吸道(鼻腔)。测量了人体模型对原始扫描数据的保真度,结果表明,对于简单形状的人体模型,其横截面误差小于5%,而对于复杂横截面形状(如鼻腔)的横截面误差则高达16%。此错误主要是由于在内部模具上使用了PVA涂层,可以通过缩小数字模型来减少此错误。面积变化的百分之十六小于自然情况下患者之间生理几何形状的变化。通过选择弹性体的壁厚,透壁压力和杨氏模量,可将幻影壁的柔度控制在生理上的现实范围内。对于Sylgard 184,给出了杨氏模量对固化温度的依赖性数据。还给出了与折射率匹配的工作液(即水与甘油的混合物)的密度,粘度和折射率的温度依赖性数据。

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