The vapor flow in an axially rotating heat pipe has been numerically a
nalyzed using a two-dimensional axisymmetric model in cylindrical coor
dinates. A parametric study was conducted for radial Reynolds numbers
of 0.01, 4.0, and 20.0, and rotational speeds ranging from 0 to 2800 r
.p.m. The numerical results indicate that the pressure and the axial,
radial, and tangential velocities are significantly affected by the ro
tational speed and the radial Reynolds number. In comparison to non-ro
tating heat pipes, the radial pressure distribution is no longer unifo
rm. Also, above a certain rotational speed, flow reversal occurs near
the centerline of the heat pipe. The shear stress components in the ax
ial and tangential directions at the inner pipe wall increase with the
evaporation rate and the rotational speed. The magnitude of the shear
stress components are highest in the condenser section. The results o
f this study will be beneficial in the prediction of the performance o
f axially rotating heat pipes.