首页> 外文会议>Frontiers in Biomedical Devices Conference; 20070607-08; Irvine,CA(US) >BIOMECHANICS OF STENT GRAFTS FOR INTRACRANIAL ANEURYSM REPAIR
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BIOMECHANICS OF STENT GRAFTS FOR INTRACRANIAL ANEURYSM REPAIR

机译:颅内动脉修复术中移植物的生物力学

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General non-invasive endovascular procedures for treatment of intracranial aneurysms involve stenting across the aneurysm neck, embolization and coiling of the aneurysm cavity. However it cannot be used to treat many wide-necked and fusiform intracranial aneurysms, or carotid-cavernous fistulae. Stent grafts will have the capability of completely preventing the blood flow into the aneurysm cavity or fistula rent, and thereby reducing the risk of aneurysm rupture in the brain. An endovascular approach of placing a stent graft would be a promising method. Currently available endovascular stent graft is in big diameter and is never used in the small intracranial arteries due to the grafting techniques. In this work, we developed a new grafting technique to manufacture a small-size stent graft by capturing one kind of nonporous synthetic graft (~100 micron ultrathin) onto the commercially available metal stent as shown in Figure 1. Mechanical behavior of the stent graft is investigated through nonlinear finite element method [4]. The linear increased internal pressure is applied onto the stent to simulate the effect of balloon expansion. The obtained results as shown in Figure 2 were used to understand the effects of the graft on the mechanical behavior of the stent graft, and to predict the response of the stent graft. The interaction between the stent and the graft is simulated as non-slip contact. The 3-point bending test of the stent (Figure 3) is used to predict the flexibility of the stent which will limit the thickness of the graft.
机译:用于治疗颅内动脉瘤的一般非侵入性血管内手术包括在整个动脉瘤颈部处置入支架,栓塞和缠绕动脉瘤腔。但是,它不能用于治疗许多宽颈和梭形颅内动脉瘤或颈动脉海绵窦瘘。支架移植物将具有完全阻止血液流入动脉瘤腔或瘘管的能力,从而降低大脑中动脉瘤破裂的风险。放置支架移植物的血管内方法将是一种有前途的方法。当前可用的血管内支架移植物直径大,并且由于移植技术而从未在小颅内动脉中使用。在这项工作中,我们开发了一种新的嫁接技术,通过将一种无孔合成移植物(约100微米超薄)捕获到市售金属支架上来制造小型支架移植物,如图1所示。通过非线性有限元方法研究[4]。将线性增加的内部压力施加到支架上,以模拟球囊扩张的效果。如图2所示,获得的结果用于了解移植物对支架移植物机械性能的影响,并预测支架移植物的反应。支架和移植物之间的相互作用被模拟为防滑接触。支架的三点弯曲测试(图3)用于预测支架的柔韧性,这将限制移植物的厚度。

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