Pulsatile flow and heat transfer of a magneto-micropolar fluid through a stenosed artery under the influence of body acceleration
For researchers in biofluid dynamics, this is an incremental computational study of magneto-micropolar flow in stenosed arteries with heat transfer.
This paper numerically simulates pulsatile blood flow through a stenosed artery under body acceleration and magnetic field using a micropolar fluid model. Key findings include that heat transfer increases with Hartmann number, while wall shear stress decreases with Hartmann number and increases with microrotation parameter and stenosis height.
With an aim to investigate the effect of externally imposed body acceleration and magnetic field on pulsatile flow of blood through an arterial segment having stenosis is under consideration in this paper. The flow of blood is presented by a unsteady micropolar fluid and the heat transfer characteristics have been taken into account. The non-linear equations that governing the flow are solved numerically using finite difference technique by employing a suitable coordinate transformation. The numerical results have been observed for axial and microrotation component of velocity, fluid acceleration, wall shear stress(WSS), flow resistance, temperature and the volumetric flow rate. It thus turns out that the rate of heat transfer increases with the increase of Hartmann number $H$, while the wall shear stress has a reducing effect on the Hartmann number $H$ and an enhancing effect on microrotation parameter $K$ as well as the constriction height $δ$.