| Literature DB >> 28797741 |
M Ariane1, W Wen2, D Vigolo2, A Brill3, F G B Nash3, M Barigou2, A Alexiadis4.
Abstract
The hemodynamics in flexible deep veins valves is modelled by means of discrete multi-physics and an agglomeration algorithm is implemented to account for blood accrual in the flow. Computer simulations of a number of valves typologies are carried out. The results show that the rigidity and the length of the valve leaflets play a crucial role on both mechanical stress and stagnation in the flow. Rigid and short membranes may be inefficient in preventing blood reflux, but reduce the volume of stagnant blood potentially lowering the chances of thrombosis. Additionally, we also show that in venous valves, cell agglomeration is driven by stagnation rather than mechanical stress.Entities:
Keywords: Biological venous valve; Clot; Deep venous thrombosis; Discrete multi-physics; Smoothed particle hydrodynamics
Mesh:
Year: 2017 PMID: 28797741 DOI: 10.1016/j.compbiomed.2017.07.020
Source DB: PubMed Journal: Comput Biol Med ISSN: 0010-4825 Impact factor: 4.589