Rapid virtual fractional flow reserve using 3D computational fluid dynamics

Author:

Newman Thomas12ORCID,Borker Raunak3,Aubiniere-Robb Louise1,Hendrickson Justin3,Choudhury Dipankar3,Halliday Ian14,Fenner John14,Narracott Andrew14,Hose D Rodney14,Gosling Rebecca124ORCID,Gunn Julian P124,Morris Paul D124ORCID

Affiliation:

1. Department of Infection, Immunity and Cardiovascular Disease, The Medical School, University of Sheffield , Beech Hill Road, Sheffield, S10 2RX , UK

2. Department of Cardiology, Sheffield Teaching Hospitals NHS Foundation Trust, Chesterman Wing, Northern General Hospital , Herries Road, Sheffield, S5 7AU , UK

3. Ansys Incorporated , Canonsburg, PA 15317 , USA

4. Insigneo Institute for In Silico Medicine, Pam Liversidge Building, The University of Sheffield , Broad Lane, Sheffield, S1 3JD , UK

Abstract

Abstract Aims Over the last ten years, virtual Fractional Flow Reserve (vFFR) has improved the utility of Fractional Flow Reserve (FFR), a globally recommended assessment to guide coronary interventions. Although the speed of vFFR computation has accelerated, techniques utilising full 3D computational fluid dynamics (CFD) solutions rather than simplified analytical solutions still require significant time to compute. Methods and results This study investigated the speed, accuracy and cost of a novel 3D-CFD software method based upon a graphic processing unit (GPU) computation, compared with the existing fastest central processing unit (CPU)-based 3D-CFD technique, on 40 angiographic cases. The novel GPU simulation was significantly faster than the CPU method (median 31.7 s (Interquartile Range (IQR) 24.0–44.4s) vs. 607.5 s (490–964 s), P < 0.0001). The novel GPU technique was 99.6% (IQR 99.3–99.9) accurate relative to the CPU method. The initial cost of the GPU hardware was greater than the CPU (£4080 vs. £2876), but the median energy consumption per case was significantly less using the GPU method (8.44 (6.80–13.39) Wh vs. 2.60 (2.16–3.12) Wh, P < 0.0001). Conclusion This study demonstrates that vFFR can be computed using 3D-CFD with up to 28-fold acceleration than previous techniques with no clinically significant sacrifice in accuracy.

Funder

Wellcome Trust

Publisher

Oxford University Press (OUP)

Subject

Energy Engineering and Power Technology,Fuel Technology

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