Kabilan Senthil, Kuprat Andrew P, Hlastala Michael P, Corley Richard A, Einstein Daniel R
Biological Monitoring and Modeling, Pacific Northwest National Laboratory, Richland, WA, USA.
Annu Int Conf IEEE Eng Med Biol Soc. 2011;2011:2414-7. doi: 10.1109/IEMBS.2011.6090672.
The lung is geometrically articulated across multiple scales from the trachea to the alveoli. A major computational challenge is to tightly link ODEs that describe lower scales to 3D finite element or finite volume models of airway mechanics using iterative communication between scales. In this study, we developed a novel multiscale computational framework for bidirectionally coupling 3D CFD models and systems of lower order ODEs. To validate the coupling framework, a four and eight generation Weibel lung model was constructed. For the coupled CFD-ODE simulations, the lung models were truncated at different generations and a RL circuit represented the truncated portion. The flow characteristics from the coupled models were compared to untruncated full 3D CFD models at peak inhalation and peak exhalation. Results showed that at no time or simulation was the difference in mass flux and/or pressure at a given location between uncoupled and coupled models was greater than 2.43%. The flow characteristics at prime locations for the coupled models showed good agreement to uncoupled models. Remarkably, due to reuse of the Krylov subspace, the cost of the ODE coupling is not much greater than uncoupled full 3D-CFD computations with simple prescribed pressure values at the outlets.
肺在从气管到肺泡的多个尺度上具有几何结构。一个主要的计算挑战是通过尺度间的迭代通信,将描述较低尺度的常微分方程(ODE)与气道力学的三维有限元或有限体积模型紧密联系起来。在本研究中,我们开发了一种新颖的多尺度计算框架,用于双向耦合三维计算流体动力学(CFD)模型和低阶常微分方程组。为了验证耦合框架,构建了一个四代和八代的韦贝尔肺模型。对于耦合的CFD-ODE模拟,肺模型在不同代处截断,并用一个RL电路表示截断部分。将耦合模型的流动特性与未截断的完整三维CFD模型在吸气峰值和呼气峰值时进行比较。结果表明,在任何时刻或模拟中,解耦模型和耦合模型在给定位置的质量通量和/或压力差异均不大于2.43%。耦合模型主要位置的流动特性与解耦模型显示出良好的一致性。值得注意的是,由于克雷洛夫子空间的重用,ODE耦合的成本并不比在出口处使用简单规定压力值的解耦完整三维CFD计算高多少。