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PMID: 33249781 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Haemodynamic optimisation of a dialysis graft design using a global optimisation approach.

International journal for numerical methods in biomedical engineering ·Vol. 37 ·No. 2 ·2021-00-00 ·页码 e3423

Quicken S, Delhaas T, Mees BME, Huberts W

Abstract

Disturbed flow and the resulting non-physiological wall shear stress (WSS) at the graft-vein anastomosis play an important role in arteriovenous graft (AVG) patency loss. Modifying graft geometry with helical features is a popular approach to minimise the occurrence of detrimental haemodynamics and to potentially increase graft longevity. Haemodynamic optimisation of AVGs typically requires many computationally expensive computational fluid dynamics (CFD) simulations to evaluate haemodynamic performance of different graft designs. In this study, we aimed to develop a haemodynamically optimised AVG by using an efficient meta-modelling approach. A training dataset containing CFD evaluations of 103 graft designs with helical features was used to develop computationally low-cost meta-models for haemodynamic metrics related to graft dysfunction. During optimisation, the meta-models replaced CFD simulations that were otherwise needed to evaluate the haemodynamic performance of possible graft designs. After optimisation, haemodynamic performance of the optimised graft design was verified using a CFD simulation. The obtained optimised graft design contained both a helical graft centreline and helical ridge. Using the optimised design, the magnitude of flow disturbances and the size of the anastomotic areas exposed to non-physiological WSS was successfully reduced compared to a regular straight graft. Our meta-modelling approach allowed to reduce the total number of CFD model evaluations required for our design optimisation by approximately a factor 2000. The applied efficient meta-modelling technique was successful in identifying an optimal, helical graft design at relatively low computational costs. Future studies should evaluate the in vivo benefits of the developed graft design.

Keywords
arteriovenous grafts computational fluid dynamics geometric optimisation polynomial chaos expansion sensitivity analysis
MeSH 主题词
Computer Simulation Hemodynamics Models, Cardiovascular Renal Dialysis Stress, Mechanical Veins
作者与单位
共 4 位作者,点击展开单位 / ORCID
Quicken Sjeng ORCID
Department of Biomedical Engineering, CARIM School for Cardiovascular Diseases, Maastricht University, Maastricht, The Netherlands. | Eindhoven University of Technology, Department of Biomedical Engineering, Eindhoven, Netherlands.
Delhaas Tammo ORCID
Department of Biomedical Engineering, CARIM School for Cardiovascular Diseases, Maastricht University, Maastricht, The Netherlands.
Mees Barend M E ORCID
Department of Vascular Surgery, Maastricht University Medical Centre, Maastricht, the Netherlands.
Huberts Wouter ORCID
Department of Biomedical Engineering, CARIM School for Cardiovascular Diseases, Maastricht University, Maastricht, The Netherlands. | Eindhoven University of Technology, Department of Biomedical Engineering, Eindhoven, Netherlands.
Article Info
Journal
International journal for numerical methods in biomedical engineering
Abbr.
Int J Numer Method Biomed Eng
ISSN
2040-7947
Published
2021-00-00
电子出版
2020-00-09
页码
e3423
Language
English
Country/Region
England
NLM ID
101530293
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