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Finite Element simulation of buckling-induced vein tortuosity and influence of the wall constitutive properties

机译:屈曲静脉曲折的有限元模拟及壁本构特性的影响

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摘要

The mechanisms giving rise to vein tortuosity, which is often associated with varicosis, are poorly understood. Recent works suggest that significant biological changes in the wall of varicose veins may precede the mechanical aspects of the disease. To test the hypothesis of tortuosity being a consequence of these changes, a Finite Element model was developed based on previous experimental work on vein buckling. The model was then used to evaluate the effect of alterations of the mechanical behavior of the wall on tortuosity onset and severity. The results showed that increasing anisotropy toward the circumferential direction promotes tortuosity. An increase in wall stiffness tends to decrease the level of tortuosity but interestingly, if the vein segment is little or not pre-stretched such increase will not prevent, or it will even promote, the onset of tortuosity. These results provide additional arguments supporting the hypothesis of tortuosity being the consequence of biologically-induced changes in the varicose vein wall. Based on a 3D model of the leg and in vivo identification of the material properties of varicose veins, a clinical validation of these findings is being developed.
机译:引起静脉曲折的机制通常与曲张病相关,人们对此知之甚少。最近的工作表明,静脉曲张壁上的重大生物学变化可能在疾病的机械方面出现之前。为了验证这些变化导致的曲折性假说,在先前关于静脉屈曲的实验工作的基础上,开发了有限元模型。然后使用该模型评估壁的机械性能变化对曲折起伏和严重程度的影响。结果表明,沿周向方向各向异性的增加促进了曲折性。壁刚度的增加往往会降低曲折度,但是有趣的是,如果静脉段很少或未预拉伸,这种增加将无法防止甚至促进曲折度的发作。这些结果提供了另外的论据,支持曲折性假说是曲张静脉壁生物诱发变化的结果。基于腿部3D模型和体内静脉曲张材料特性的识别,正在开发这些发现的临床验证。

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