Author
Listed:
- Yee Han Kuan
- Foad Kabinejadian
- Vinh-Tan Nguyen
- Boyang Su
- Ajit P. Yoganathan
- Hwa Liang Leo
Abstract
The characterization of the bileaflet mechanical heart valves (BMHVs) hinge microflow fields is a crucial step in heart valve engineering. Earlier in vitro studies of BMHV hinge flow at the aorta position in idealized straight pipes have shown that the aortic sinus shapes and sizes may have a direct impact on hinge microflow fields. In this paper, we used a numerical study to look at how different aortic sinus shapes, the downstream aortic arch geometry, and the location of the hinge recess can influence the flow fields in the hinge regions. Two geometric models for sinus were investigated: a simplified axisymmetric sinus and an idealized three-sinus aortic root model, with two different downstream geometries: a straight pipe and a simplified curved aortic arch. The flow fields of a 29-mm St Jude Medical BMHV with its four hinges were investigated. The simulations were performed throughout the entire cardiac cycle. At peak systole, recirculating flows were observed in curved downsteam aortic arch unlike in straight downstream pipe. Highly complex three-dimensional leakage flow through the hinge gap was observed in the simulation results during early diastole with the highest velocity at 4.7 m/s, whose intensity decreased toward late diastole. Also, elevated wall shear stresses were observed in the ventricular regions of the hinge recess with the highest recorded at 1.65 kPa. Different flow patterns were observed between the hinge regions in straight pipe and curved aortic arch models. We compared the four hinge regions at peak systole in an aortic arch downstream model and found that each individual hinge did not vary much in terms of the leakage flow rate through the valves.
Suggested Citation
Yee Han Kuan & Foad Kabinejadian & Vinh-Tan Nguyen & Boyang Su & Ajit P. Yoganathan & Hwa Liang Leo, 2015.
"Comparison of hinge microflow fields of bileaflet mechanical heart valves implanted in different sinus shape and downstream geometry,"
Computer Methods in Biomechanics and Biomedical Engineering, Taylor & Francis Journals, vol. 18(16), pages 1785-1796, December.
Handle:
RePEc:taf:gcmbxx:v:18:y:2015:i:16:p:1785-1796
DOI: 10.1080/10255842.2014.964220
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