Real-Time Surgical Planning for Cerebral Aneurysms Treated With Intrasaccular Flow Disruption Devices Based on Fast Virtual Deployment and Discrete Element Method.

IF 2.2 4区 医学 Q3 ENGINEERING, BIOMEDICAL International Journal for Numerical Methods in Biomedical Engineering Pub Date : 2024-11-22 DOI:10.1002/cnm.3886
Xinzhuo Li, Jiewen Geng, Yong Feng, Shengzhang Wang, Hongqi Zhang
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Abstract

This study introduces an innovative real-time surgical planning platform optimized for the treatment of arterial aneurysms using intrasaccular flow disruption (IFD) devices. This platform incorporates a cutting-edge fast virtual deployment (FVD) algorithm alongside a discrete element method (DEM) for computational fluid dynamics (CFD) analyses. It facilitates the efficient virtual deployment of IFD devices, minimizing computational overhead while allowing for comprehensive postoperative hemodynamic efficacy assessment. The FVD algorithm employs an adaptive wall adherence and curvature control system, validated through both idealized and patient-specific model simulations. Post-treatment hemodynamic shifts are quantified by discretizing device wire filaments into discrete particles, which are then integrated with blood flow simulations for enhanced realism. The FVD algorithm efficiently executes virtual deployment of IFD devices within seconds, producing DEM-CFD computational models that align closely with bench testing, traditional Finite Element Method (FEM) analyses, and angiographic data. DEM-CFD outcomes link occlusion effectiveness to post-implantation hemodynamic characteristics, influenced by the aneurysm's unique anatomical features and clinical intervention strategies. The proposed platform demonstrates substantial improvement in balancing computational efficiency with analytical precision. It provides a viable and innovative framework for real-time surgical planning, presenting significant implications for clinical application in arterial aneurysm management.

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基于快速虚拟部署和离散元方法的脑动脉瘤实时手术规划
本研究介绍了一种创新的实时手术规划平台,该平台针对使用肌内血流阻断(IFD)装置治疗动脉动脉瘤进行了优化。该平台结合了最先进的快速虚拟部署(FVD)算法和用于计算流体动力学(CFD)分析的离散元方法(DEM)。它有助于高效虚拟部署 IFD 设备,最大限度地减少计算开销,同时进行全面的术后血液动力学疗效评估。FVD 算法采用了自适应壁粘附和曲率控制系统,并通过理想化和患者特定模型模拟进行了验证。通过将器械丝线离散成离散粒子,量化治疗后的血液动力学变化,然后将其与血流模拟集成,以增强真实感。FVD 算法可在数秒内高效执行 IFD 装置的虚拟部署,生成的 DEM-CFD 计算模型与工作台测试、传统有限元法 (FEM) 分析和血管造影数据密切吻合。DEM-CFD 的结果将闭塞效果与植入后的血流动力学特征联系起来,这些特征受到动脉瘤独特的解剖特征和临床干预策略的影响。拟议的平台在平衡计算效率和分析精度方面取得了重大改进。它为实时手术规划提供了一个可行的创新框架,对动脉瘤管理的临床应用具有重要意义。
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来源期刊
International Journal for Numerical Methods in Biomedical Engineering
International Journal for Numerical Methods in Biomedical Engineering ENGINEERING, BIOMEDICAL-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
4.50
自引率
9.50%
发文量
103
审稿时长
3 months
期刊介绍: All differential equation based models for biomedical applications and their novel solutions (using either established numerical methods such as finite difference, finite element and finite volume methods or new numerical methods) are within the scope of this journal. Manuscripts with experimental and analytical themes are also welcome if a component of the paper deals with numerical methods. Special cases that may not involve differential equations such as image processing, meshing and artificial intelligence are within the scope. Any research that is broadly linked to the wellbeing of the human body, either directly or indirectly, is also within the scope of this journal.
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Real-Time Surgical Planning for Cerebral Aneurysms Treated With Intrasaccular Flow Disruption Devices Based on Fast Virtual Deployment and Discrete Element Method. Analyzing Pulse Compression Performance and Image Quality Metrics of Different Excitations in MAET With Magnetic Field Measurements. Precision Orthodontic Force Simulation Using Nodal Displacement-Based Archwire Loading Approach. Design of Mechanics-Guided Helmet Pad and Its Protection Performance Against the Blast Shock Waves. Gender-Based Differences in the Biomechanical Behavior of the Thorax During CPR Maneuvers.
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