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首页> 外文期刊>Communications in Numerical Methods in Engineering >A computationally efficient framework for the simulation of cardiac perfusion using a multi-compartment Darcy porous-media flow model
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A computationally efficient framework for the simulation of cardiac perfusion using a multi-compartment Darcy porous-media flow model

机译:使用多隔室Darcy多孔介质流动模型模拟心脏灌注的高效计算框架

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摘要

We present a method to efficiently simulate coronary perfusion in subject-specific models of the heart within clinically relevant time frames. Perfusion is modelled as a Darcy porous-media flow, where the permeability tensor is derived from homogenization of an explicit anatomical representation of the vasculature. To account for the disparity in length scales present in the vascular network, in this study, this approach is further refined through the implementation of a multi-compartment medium where each compartment encapsulates the spatial scales in a certain range by using an effective permeability tensor. Neighbouring compartments then communicate through distributed sources and sinks, acting as volume fluxes. Although elegant from a modelling perspective, the full multi-compartment Darcy system is computationally expensive to solve. We therefore enhance computational efficiency of this model by reducing the N -compartment system of Darcy equations to N pressure equations, and N subsequent projection problems to recover the Darcy velocity. The resulting 'reduced' Darcy formulation leads to a dramatic reduction in algebraic-system size and is therefore computationally cheaper to solve than the full multi-compartment Darcy system. A comparison of the reduced and the full formulation in terms of solution time and memory usage clearly highlights the superior performance of the reduced formulation. Moreover, the implementation of flux and, specifically, impermeable boundary conditions on arbitrarily curved boundaries such as epicardium and endocardium is straightforward in contrast to the full Darcy formulation. Finally, to demonstrate the applicability of our methodology to a personalized model and its solvability in clinically relevant time frames, we simulate perfusion in a subject-specific model of the left ventricle.
机译:我们提出一种方法,可以在临床相关的时间范围内,在心脏的特定对象模型中有效模拟冠状动脉灌注。将灌注建模为Darcy多孔介质流,其中渗透率张量源自脉管系统的明确解剖学表示的均质化。为了解决存在于血管网络中的长度尺度的差异,在本研究中,通过实施多隔室介质进一步完善了该方法,其中,每个隔室通过使用有效的渗透率张量将空间尺度封装在一定范围内。然后,相邻的车厢通过分布的源和汇进行通信,充当体积通量。尽管从建模的角度来看很优雅,但是完整的多隔室Darcy系统解决起来在计算上很昂贵。因此,我们通过将N隔室的Darcy方程组简化为N个压力方程,以及N个后续的投影问题来恢复Darcy速度,从而提高了该模型的计算效率。所得的“减少”的达西公式导致代数系统大小的显着减小,因此,与完整的多隔室达西系统相比,该算法在计算上更便宜。在解决方案时间和内存使用方面对还原配方和完整配方的比较清楚地突出了还原配方的卓越性能。而且,与完整的达西公式相反,在任意弯曲的边界(例如心外膜和心内膜)上实施通量,尤其是不可渗透的边界条件很容易。最后,为了证明我们的方法对个性化模型的适用性及其在临床相关时间范围内的可求解性,我们在受试者的左心室特定模型中模拟了灌注。

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  • 作者单位

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Computer Science, University of Oxford, Oxford, OX1 3QD, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK;

    Department of Biomedical Engineering, King's College London, King's Health Partners, St. Thomas' Hospital, London, SE1 7EH, UK Department of Computer Science, University of Oxford, Oxford, OX1 3QD, UK;

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  • 正文语种 eng
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  • 关键词

    cardiac perfusion; multi-compartment modelling; Darcy flow; porous-media flow; finite-element modelling;

    机译:心脏灌注多隔室建模;达西流多孔介质流有限元建模;

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