模拟动脉壁运动的粘弹性聚二甲基硅氧烷模体的研制与表征。

ty10086 提交于 周三, 08/25/2021 - 16:13
文章英文标题
Development and characterization of viscoelastic polydimethylsiloxane phantoms for simulating arterial wall motion.
正文
动脉管壁黏弹性很可能是血管病变的良好诊断指标,但目前仅有少数关于管壁黏弹性评估的研究。动脉模体是用聚二甲基硅氧烷( PDMS )制造的,用来模拟动脉壁的粘弹性特征,它取决于动脉粥样硬化的壁组织组成和进展。PDMS的粘弹性能通过调节树脂、固化剂、纯硅油的混合比例来控制。测量动脉模体的压力和直径波形,估计管壁粘弹性。弹性采用脉冲压力上的直径膨胀来评价,黏度采用压力-直径曲线的能量耗散比和压力与直径波形的一阶谐波之间的相位滞后( DP1 )来评价。加入纯硅油在降低其黏度的同时,进一步软化了硅弹性体。混合比为10∶1∶5和10∶1∶8的模体(树脂∶固化剂∶硅油)表现出与20∶1∶0和25∶1∶0的弹性相似,尽管黏度明显下降。在不同混合比( 20∶1∶0和10∶1∶5 )的动脉模体界面附近发现相位滞后( DP1 )突然减小,而直径扩张的变化可忽略不计。DP1可能是区分弹性性质相似但粘性行为不同的壁组织的新指标。模拟动脉粥样硬化管壁的体模压力直径曲线和DP1可以与患者数据进行比较,并应用于临床评价斑块粘弹性。采用标准线性粘弹性模型对动脉壁运动进行了计算分析。从实测的压力-直径关系确定模型参数,成功模拟了不同黏弹性性质的体模的动脉壁运动。该计算模型可能对病原性管壁变性引起的动脉粘弹性变化提供有益的洞察。
文章内容(英文)
Arterial wall viscoelasticity is likely to be a good diagnostic indicator of vascular disease, but only a few studies on the assessment of wall viscosity have been performed. Artery phantoms are manufactured using polydimethylsiloxane (PDMS) to simulate the viscoelastic characteristics of the artery wall, which depends on the wall tissue composition and progression of atherosclerosis. The viscoelastic property of PDMS is controlled by adjusting the mixture ratio of resin, curing agent, and pure silicone oil. The pressure and diameter waveforms of the artery phantom were measured to estimate the wall viscoelasticity. Elasticity is assessed using the diameter distention over the pulse pressure, and the viscosity is evaluated using the energy dissipation ratio of the pressure-diameter curve and the phase lag between the first harmonics of pressure and diameter waveforms (DP1). PDMS phantoms with resin-to-curing-agent ratios of 20:1 and 25:1 show viscoelastic characteristics similar to those of young and old human carotid arteries, respectively. Adding pure silicone oil further softens the silicone elastomer while decreasing its viscosity. The phantoms with 10:1:5 and 10:1:8 mixture ratios (resin: curing agent: silicone oil) show elasticity similar to that of the 20:1:0 and 25:1:0 ratios, respectively, albeit with a noticeable decrease in viscosity. An abrupt decrease in the phase lag (DP1) was found near the interface of the arterial phantom with different mixture ratios (20:1:0 and 10:1:5), while the change in diameter distension was negligible. DP1 may be a new index to differentiate wall tissues with similar elastic properties but different viscous behavior. The pressure diameter curve and DP1 of the phantom simulating the atherosclerosis wall can be compared with patient data and applied to clinical evaluation of plaque viscoelasticity. Computational analysis of arterial wall motion was performed using a standard linear viscoelastic model. The model parameters were determined from the measured pressure-diameter relationship, and the arterial wall motions of phantoms with different viscoelastic properties were successfully simulated. The computational model may provide a useful insight into the changes of arterial viscoelasticity caused by pathogenic wall degeneration.
来源出处
Journal|[J]Medical Engineering & PhysicsVolume 91, 2021. PP 12-18
DOI
https://doi.org/10.1016/J.MEDENGPHY.2021.03.004

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