首页> 外文期刊>British Journal of Applied Science and Technology >An Investigation on Silicone and SiliconeRubber Stents in Comparison with StainlessSteel Stents: Introducing a Double LayerStent Model
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An Investigation on Silicone and SiliconeRubber Stents in Comparison with StainlessSteel Stents: Introducing a Double LayerStent Model

机译:与不锈钢支架相比,有机硅和有机硅橡胶支架的研究:引入双层支架模型

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A single layer of different materials; silicone, silicone rubber and steel, is investigated for stent deployment. The response of the proposed stents to the mathematical simulation of radial blood pressure waveform is studied considering their mechanical properties. The stress-strain response and the stored strain energy are computed likewise. Furthermore, a model of a double layer stent made of silicone-silicone rubber is suggested. The behavior of the introduced double layer stent model is investigated under the effect of radial pulsating pressure. The model is tested for strain response, stored energy, inertial energy and power loss. This model employs the actual available physical constants. The results indicate that silicone and silicone rubber are not only biocompatible but also eliminate possible thrombosis as well. Moreover, they are electrically compatible, since they do not contribute to heating complications induced by electromagnetic field (EMF) exposure. Aim: Study the viscoelastic behavior of an arterial transversally deployed stent, of suggested materials namely silicone and silicone rubber to be compared to the commonly used stainless steel. A proposed double layer stent model stress-strain response is mathematically tested for pulsatile radial pressure. Study Design: Mechanical viscoelastic double layer modelPlace and Duration of Study: Faculty of Engineering, Cairo Univ. April to Dec. 2013.Methodology: Computer simulation of the presented mathematical model by MapleV release 4 is carried out. Results: Table 1 shows the results obtained employing the single layer stent model to compare mechanical response of steel, silicone and silicone rubber. They are compared to the inner two layers of the human arterial wall. Silicone and intima media layers show highest strain responses, 3.98% and 0.54% respectively and consequently largest values of stored energy. Silicone rubber and adventitia show strain responses of 0.015% and 0.000603% respectively. These results recommended the proposed design of the double layer stent. Stress-strain complex functions are represented for the each layer besides the stored energy, inertia, and power loss. Conclusion: Results largely elect the silicone materials to replace steel regarding the strain energy that provides backward pressure. Since stored strain energy contributes to the pulsatile motion of arterial wall then the higher strain lessens susceptibility to possible thrombosis or stagnation. In other words, the pulsating stent wall enhances a vibrating motion that compensates loss of elasticity of a stiff artery. The proposed design for the double layer silicone-silicone rubber stent shows highly fluctuating time response. The fluctuations provide adequate wall strain energy to push back and hence maintain the blood flow rate. This type of stent can be implanted in vessels suffering stiffness to overcome restenosis.
机译:单层不同的材料;研究了硅树脂,硅橡胶和钢的支架部署情况。考虑到它们的机械性能,研究了所提出的支架对径向血压波形的数学模拟的响应。同样地计算应力-应变响应和所存储的应变能。此外,提出了由硅酮-硅橡胶制成的双层支架的模型。在径向脉动压力的影响下研究了引入的双层支架模型的行为。测试了该模型的应变响应,存储的能量,惯性能量和功率损耗。该模型采用实际可用的物理常数。结果表明,硅酮和硅橡胶不仅具有生物相容性,而且还消除了可能的血栓形成。而且,它们是电兼容的,因为它们不会增加因电磁场(EMF)暴露而引起的加热并发症。目的:研究一种动脉横向部署支架的粘弹性行为,将建议的材料(例如硅酮和硅橡胶)与常用的不锈钢进行比较。提出的双层支架模型应力-应变响应在脉动径向压力上进行了数学测试。研究设计:机械粘弹性双层模型研究地点和持续时间:开罗大学工程学院。 2013年4月至12月。方法:对MapleV版本4提出的数学模型进行计算机仿真。结果:表1显示了使用单层支架模型比较钢,硅树脂和硅橡胶的机械响应所获得的结果。将它们与人体动脉壁的内两层进行比较。硅树脂和内膜介质层显示出最高的应变响应,分别为3.98%和0.54%,因此是最大的储能值。硅橡胶和外膜的应变响应分别为0.015%和0.000603%。这些结果推荐了双层支架的建议设计。除存储的能量,惯性和功率损耗外,还为每一层表示了应力应变复函数。结论:就产生反向压力的应变能而言,结果在很大程度上选择了有机硅材料来代替钢。由于存储的应变能有助于动脉壁的搏动运动,因此较高的应变会降低对可能的血栓形成或停滞的敏感性。换句话说,脉动支架壁增强了振动运动,该振动运动补偿了僵硬动脉的弹性损失。双层硅橡胶支架的建议设计显示出高度波动的时间响应。波动提供了足够的壁应变能以将其推回并因此维持血液流速。可以将这种类型的支架植入具有刚度的血管中,以克服再狭窄。

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