首页> 外文会议>ASME Joint US-European Fluids Engineering Division summer meeting;FEDSM2010 >MECHANICAL PROPERTIES OF TUBE-SHAPED POLY (VINYL ALCOHOL) HYDROGEL BLOOD VESSEL BIOMODEL
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MECHANICAL PROPERTIES OF TUBE-SHAPED POLY (VINYL ALCOHOL) HYDROGEL BLOOD VESSEL BIOMODEL

机译:管形聚(乙烯醇)水凝胶血管生物模型的力学性能

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Biomodels, which mimic the shape and motion of blood vessels, have been developed for clinical training in endovascular intervention and for the technical development of interventional devices such as stents. The present authors have developed a biomodel made of poly (vinyl alcohol) hydrogel (PVA-H), which has good transparency, low surface friction, and dynamic viscoelasticity similar to that of arteries. However, evaluation of its behavior as an arterial biomodel has not been carried out. In order to develop a PVA-H biomodel which can accurately mimic the motion of blood vessels, it is necessary to measure and match its mechanical properties in a tube shape mimicking blood vessels. In this study, tube-shaped PVA-H biomodels were prepared, and their mechanical properties were evaluated as to pulse wave velocity (PWV), compliance, and transfer function.PWV was calculated with Young's modulus and dimensions of the biomodels. A tube-shaped PVA-H model and a model made of commercial silicone were set in a pulsatile flow path apparatus filled pure water (23°C). Sinusoidal pulsatile waves of various frequencies generated by a screw pump were released into flow path. The flow rate, the inner pressure, and the diameter of the biomodels were measured. The compliance of a biomodel was calculated with changing pressures and diameters. The transfer function was obtained as the ratio of the amplitude of the pressure in front of a biomodel and that behind it.The two kinds of biomodels studied showed PWV similar to that of real arteries: PVA-H shows lower PWV which younger arteries tend to show, while silicone shows higher PWV, similar to the case of aged arteries. In compliance, PVA-H shows a value similar to that of arteries in the lower pressure range, whereas silicone shows a value similar to that of arteriesat higher pressure. A difference of transfer function in relation to the pulsatile frequencies was observed. This phenomenon is similar to that of real blood vessels and explainable in terms of the theory of the forced vibration in single-degree-of-freedom systems with attenuation. The transfer function is affected by mechanical properties of the wall, and the difference between biomodels is due to the viscoelasticity of the biomodels. With PVA-H, these parameters can be gradually changed by adjusting factors such as concentration. These findings indicate that PVA-H would be useful for the development of biomodels.
机译:已经开发出了模拟血管形状和运动的生物模型,用于血管内介入的临床培训以及诸如支架之类的介入设备的技术开发。作者开发了一种由聚乙烯醇水凝胶(PVA-H)制成的生物模型,该模型具有良好的透明性,低表面摩擦力以及与动脉类似的动态粘弹性。但是,尚未对其行为作为动脉生物模型进行评估。为了开发可以精确模拟血管运动的PVA-H生物模型,有必要在模拟血管的管形中测量并匹配其机械性能。在这项研究中,准备了管状的PVA-H生物模型,并评估了它们的机械性能,如脉搏波速度(PWV),顺应性和传递函数。 用杨氏模量和生物模型的尺寸计算PWV。在填充有纯水(23℃)的脉动流路装置中,设置了管状的PVA-H模型和市售的有机硅模型。由螺杆泵产生的各种频率的正弦脉动波被释放到流路中。测量流速,内部压力和生物模型的直径。通过改变压力和直径来计算生物模型的顺应性。获得的传递函数是生物模型前面和后面的压力幅度之比。 所研究的两种生物模型显示的PWV与真实动脉相似:PVA-H显示较低的PWV(年轻的动脉倾向于显示),而有机硅显示的PWV较高,类似于老年动脉。在顺应性方面,PVA-H在较低压力范围内显示与动脉相似的值,而硅树脂显示与动脉相似的值 在更高的压力下。观察到传递函数相对于脉动频率的差异。这种现象类似于真实血管的现象,并且可以根据单自由度衰减系统中的强迫振动理论进行解释。传递函数受壁的机械性能影响,生物模型之间的差异是由于生物模型的粘弹性所致。使用PVA-H,可以通过调整浓度等因素逐渐更改这些参数。这些发现表明PVA-H对于生物模型的开发将是有用的。

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