Authors
Sander Land, Viatcheslav Gurev, Sander Arens, Christoph M Augustin, Lukas Baron, Robert Blake, Chris Bradley, Sebastian Castro, Andrew Crozier, Marco Favino, Thomas E Fastl, Thomas Fritz, Hao Gao, Alessio Gizzi, Boyce E Griffith, Daniel E Hurtado, Rolf Krause, Xiaoyu Luo, Martyn P Nash, Simone Pezzuto, Gernot Plank, Simone Rossi, Daniel Ruprecht, Gunnar Seemann, Nicolas P Smith, Joakim Sundnes, J Jeremy Rice, Natalia Trayanova, Dafang Wang, Zhinuo Jenny Wang, Steven A Niederer
Publication date
2015/12/8
Journal
Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences
Volume
471
Issue
2184
Pages
20150641
Publisher
The Royal Society Publishing
Description
Models of cardiac mechanics are increasingly used to investigate cardiac physiology. These models are characterized by a high level of complexity, including the particular anisotropic material properties of biological tissue and the actively contracting material. A large number of independent simulation codes have been developed, but a consistent way of verifying the accuracy and replicability of simulations is lacking. To aid in the verification of current and future cardiac mechanics solvers, this study provides three benchmark problems for cardiac mechanics. These benchmark problems test the ability to accurately simulate pressure-type forces that depend on the deformed objects geometry, anisotropic and spatially varying material properties similar to those seen in the left ventricle and active contractile forces. The benchmark was solved by 11 different groups to generate consensus solutions, with typical …
Total citations
2016201720182019202020212022202320246917152014141810
Scholar articles
S Land, V Gurev, S Arens, CM Augustin, L Baron… - Proceedings of the Royal Society A: Mathematical …, 2015