论文标题
基于非线性力学的颅内动脉瘤的虚拟盘绕方法
A Nonlinear Mechanics-based Virtual Coiling Method For Intracranial Aneurysm
论文作者
论文摘要
Enodecular卷管通过使血栓形成闭塞来治疗颅内动脉瘤(IAS)。理想情况下,盘绕的IAS最终在长期内遮住了。但是,在治疗随访中发现20.8%的人未完全遮住。计算机模拟盘绕及其对动脉瘤流的影响可以帮助临床医生预测治疗结果是先验的,但是它需要对线圈的准确建模及其部署程序。除了准确之外,盘绕模拟还必须有效地用作床头工具。迄今为止,已经开发了几种虚拟盘绕技术,但它们缺乏准确性或效率。例如,基于有限元的虚拟盘绕方法对盘绕的力学进行建模,并且高度准确,以高计算成本(因此较低的效率)为代价。基于几何规则的盘绕技术忽略了机制,因此在计算上是有效的,但可能会产生不切实际的线圈部署。为了开发一种结合准确性和效率的虚拟盘绕方法,我们提出了一种新型的虚拟盘绕算法,该算法将与非线性力学和非线性接触建模线圈部署。我们的方法可能比现有的“简单”技术更准确,因为我们对线圈力学进行了建模。它的可能性也比有限元技术更快,因为它建模了这些算法中最耗时的部分,即触点触点分辨率,其新型公式可以通过指数函数更快地解决接触速度。此外,我们将线圈的预形和线圈包装建模到导管中,这两种都对建模很重要,但缺乏大多数现有技术。
Enodvascular coils treat intracranial aneurysms (IAs) by causing them to occlude by thrombosis. Ideally, coiled IAs eventually occlude in the long-term. However, 20.8% are found incompletely occluded at treatment follow-up. Computer simulations of coiling and its effect on aneurysmal flow could help clinicians predict treatment outcomes a priori, but it requires accurate modeling of coils and their deployment procedure. In addition to being accurate, coiling simulations must be efficient to be used as a bedside tool. To date, several virtual coiling techniques have been developed, but they lack either accuracy or efficiency. For example, finite-element-based virtual coiling methods model the mechanics of coiling and are highly accurate, at the expense of high computational cost (and thus low efficiency). Geometric-rule-based coiling techniques ignore the mechanics and therefore are computationally efficient, but may produce unrealistic coil deployments. In order to develop a virtual coiling method that combines accuracy and efficiency, we propose a novel virtual coiling algorithm that models coil deployment with nonlinear mechanics and nonlinear contact. Our approach is potentially more accurate than existing "simple" techniques because we model coil mechanics. It is also potentially faster than finite-element techniques because it models the most time-consuming part of these algorithms-namely contact resolution-with a novel formulation that resolves contact faster with exponential functions. Moreover, we model the coil's pre-shape as well as coil packaging into the catheter, both of which are important to model but are lacking from most existing techniques.