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首页> 外文期刊>Journal of neurosurgery. >A computational fluid dynamics simulation framework for ventricular catheter design optimization
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A computational fluid dynamics simulation framework for ventricular catheter design optimization

机译:室内导管设计优化的计算流体动力学仿真框架

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OBJECTIVE Cerebrospinal fluid (CSF) shunts are the primary treatment for patients suffering from hydrocephalus. While proven effective in symptom relief, these shunt systems are plagued by high failure rates and often require repeated revision surgeries to replace malfunctioning components. One of the leading causes of CSF shunt failure is obstruction of the ventricular catheter by aggregations of cells, proteins, blood clots, or fronds of choroid plexus that occlude the catheter's small inlet holes or even the full internal catheter lumen. Such obstructions can disrupt CSF diversion out of the ventricular system or impede it entirely. Previous studies have suggested that altering the catheter's fluid dynamics may help to reduce the likelihood of complete ventricular catheter failure caused by obstruction. However, systematic correlation between a ventricular catheter's design parameters and its performance, specifically its likelihood to become occluded, still remains unknown. Therefore, an automated, open-source computational fluid dynamics (CFD) simulation framework was developed for use in the medical community to determine optimized ventricular catheter designs and to rapidly explore parameter influence for a given flow objective.
机译:客观的脑脊液(CSF)分流是患有脑积水的患者的主要治疗方法。虽然证明有效的症状浮雕,但这些分流系统受到高故障率的困扰,并且通常需要重复的修正手术,以取代故障组件。 CSF分流失败的主要原因之一是通过细胞,蛋白质,血液凝块或脉络丛的聚集来阻塞心室导管,抑制导管的小入口孔或甚至全内部导管腔。这种障碍物可以破坏心室系统的CSF转移或完全妨碍它。以前的研究表明,改变导管的流体动力学可能有助于降低由梗阻引起的完全心室导管衰竭的可能性。然而,室内导管的设计参数与其性能之间的系统相关性,特别是其变得堵塞的可能性,仍然是未知的。因此,开发了一种自动开源计算流体动力学(CFD)仿真框架用于医学界,以确定优化的心室导管设计并迅速探索给定流量目标的参数影响。

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