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Computational fluid dynamics modelling in cardiovascular medicine

Heart · 2015 · Vol. 102(1) · pp. 18–28
Paul MorrisAndrew NarracottHendrik von Tengg‐KobligkDaniel Alejandro Silva SotoSarah HsiaoAngela LunguPaul C. EvansNeil W. BressloffPatricia V. LawfordD. Rodney HoseJulian Gunn

Abstract

This paper reviews the methods, benefits and challenges associated with the adoption and translation of computational fluid dynamics (CFD) modelling within cardiovascular medicine. CFD, a specialist area of mathematics and a branch of fluid mechanics, is used routinely in a diverse range of safety-critical engineering systems, which increasingly is being applied to the cardiovascular system. By facilitating rapid, economical, low-risk prototyping, CFD modelling has already revolutionised research and development of devices such as stents, valve prostheses, and ventricular assist devices. Combined with cardiovascular imaging, CFD simulation enables detailed characterisation of complex physiological pressure and flow fields and the computation of metrics which cannot be directly measured, for example, wall shear stress. CFD models are now being translated into clinical tools for physicians to use across the spectrum of coronary, valvular, congenital, myocardial and peripheral vascular diseases. CFD modelling is apposite for minimally-invasive patient assessment. Patient-specific (incorporating data unique to the individual) and multi-scale (combining models of different length- and time-scales) modelling enables individualised risk prediction and virtual treatment planning. This represents a significant departure from traditional dependence upon registry-based, population-averaged data. Model integration is progressively moving towards 'digital patient' or 'virtual physiological human' representations. When combined with population-scale numerical models, these models have the potential to reduce the cost, time and risk associated with clinical trials. The adoption of CFD modelling signals a new era in cardiovascular medicine. While potentially highly beneficial, a number of academic and commercial groups are addressing the associated methodological, regulatory, education- and service-related challenges.

Cardiovascular Function and Risk FactorsCardiac Valve Diseases and TreatmentsMechanical Circulatory Support DevicesComputational fluid dynamicsMedicinePopulationPrecision medicineScale (ratio)Risk assessmentComputational modelComputer scienceRisk analysis (engineering)Simulation

MeSH terms

AnimalsCardiovascular DiseasesCardiovascular SystemComputer SimulationDiagnostic ImagingCardiac Surgical ProceduresHemodynamicsHumansImage Processing, Computer-AssistedModels, CardiovascularPredictive Value of TestsProsthesis DesignComputer-Aided DesignProsthesis Implantation

Funding

  • British Heart Foundation
Citations
460
FWCI
13.81
field-weighted impact
References
73
Percentile
99%
vs. same field & year
Citations per year
References
Mechanotransduction and endothelial cell homeostasis: the wisdom of the cell
American Journal of Physiology-Heart and Circulatory Physiology · 2006 · 885 citations
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