一个LBM-FEM强大而高效的流体结构合方案,用于分区数值模拟血流-大动脉相互作用
Jolan Lopez1, Zhe Li1, Guillaume Oger1
1Nantes Université, École Centrale Nantes, CNRS, LHEEA, UMR 6598, F-44000, Nantes, France.
Computers in biology and medicine
|July 2, 2025
概括
一个新的分区合方案增强了流体结构相互作用 (FSI) 模拟. 这种方法提高了复杂的生物机械应用的计算效率和准确性,例如通过人工门的血液流动.
科学领域:
- 计算流体动力学 计算流体动力学
- 固体机械学 固体机械学
- 生物力学 生物力学
背景情况:
- 流体结构相互作用 (FSI) 模拟对于理解复杂现象至关重要.
- 现有的合方案经常面临灵活性,稳定性和计算效率方面的挑战.
- 需要新的数值方法来解决FSI分析中的这些限制.
研究的目的:
- 为数值模拟FSI问题引入一种新的分区合方案.
- 提高FSI模拟的灵活性和数值稳定性.
- 提高计算效率,同时在复杂的FSI场景中保持准确性.
主要方法:
- 将流体动力学的格子博尔兹曼法 (LBM) 与固体力学的有限元素法 (FEM) 结合起来.
- 使用沉浸边界方法 (IBM) 实现流体和固体领域的无集成.
- 实施一个接口力预测技术,以提高数值稳定性和强度.
主要成果:
- 该分区方案在3D挥舞旗基准测试中与参考结果有很好的一致性.
- 成功模拟了脉动性血流与可变形的人造大动脉片的相互作用.
- 实现了与现有方法相比的准确性,与之前的强合方法相比,效率提高了近四倍.
结论:
- 拟议的分区合方案为FSI问题提供了灵活,稳定和计算效率高的解决方案.
- 这种方法对于复杂的生物机械应用特别有效.
- 经过验证的方案为推动FSI研发提供了一个有前途的工具.
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