4.5 Article

Effects of Uncertainty of Outlet Boundary Conditions in a Patient-Specific Case of Aortic Coarctation

期刊

ANNALS OF BIOMEDICAL ENGINEERING
卷 49, 期 12, 页码 3494-3507

出版社

SPRINGER
DOI: 10.1007/s10439-021-02841-9

关键词

Aortic coarctation; Computational fluid dynamics; Windkessel model; Uncertainty quantification; Magnetic resonance imaging

资金

  1. scholarship Consorzio ILO2-Erasmus+'' a.a. 2018/2019
  2. Research Training Fellowship - British Heart Foundation [GN2572, PG/17/6/32797]

向作者/读者索取更多资源

CFD simulations of blood flow play an important role in cardiovascular studies, with accuracy depending on the certainty of input parameters. Propagating uncertainty from clinical data to model results allows estimation of model prediction confidence. In a patient-specific aortic coarctation model, Windkessel models as outflow boundary conditions and stochastic analysis were used to evaluate the impact of uncertain parameters.
Computational Fluid Dynamics (CFD) simulations of blood flow are widely used to compute a variety of hemodynamic indicators such as velocity, time-varying wall shear stress, pressure drop, and energy losses. One of the major advances of this approach is that it is non-invasive. The accuracy of the cardiovascular simulations depends directly on the level of certainty on input parameters due to the modelling assumptions or computational settings. Physiologically suitable boundary conditions at the inlet and outlet of the computational domain are needed to perform a patient-specific CFD analysis. These conditions are often affected by uncertainties, whose impact can be quantified through a stochastic approach. A methodology based on a full propagation of the uncertainty from clinical data to model results is proposed here. It was possible to estimate the confidence associated with model predictions, differently than by deterministic simulations. We evaluated the effect of using three-element Windkessel models as the outflow boundary conditions of a patient-specific aortic coarctation model. A parameter was introduced to calibrate the resistances of the Windkessel model at the outlets. The generalized Polynomial Chaos method was adopted to perform the stochastic analysis, starting from a few deterministic simulations. Our results show that the uncertainty of the input parameter gave a remarkable variability on the volume flow rate waveform at the systolic peak simulating the conditions before the treatment. The same uncertain parameter had a slighter effect on other quantities of interest, such as the pressure gradient. Furthermore, the results highlight that the fine-tuning of Windkessel resistances is not necessary to simulate the post-stenting scenario.

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