Research
Unsteady Couette Flow with Transpiration in a Rotating System
The unsteady Couette flow with transpiration of a viscous fluid in a rotating system has been considered. An exact solution of the governing equations has been obtained by using Laplace Transform Technique. Solutions for velocity distributions and the shear stresses have been obtained for small time Γ°ΒΒβ°= Γ°ΒΕΈΕ½. Γ°ΒΕΈΕ½Γ°ΒΕΈβ as well as large time Γ°ΒΒβ°= Γ°ΒΕΈΒΓ°ΒΕΈΕ½. Γ°ΒΕΈΕ½. it is found that for small times the primary velocity profile increases with decrease in Γ°ΒβΒ²Γ°ΒΕΈΒ with constant Γ°ΒβΒΉΓ°Βββ while the secondary velocity profile decreases with decrease in Γ°ΒβΒ²Γ°ΒΕΈΒ. It is also found that for large times, the primary flow increases with increase in Γ°ΒβΒ²Γ°ΒΕΈΒ, the secondary velocity behaves in an oscillatory manner near the moving plate and increases near the stationary plate. There exists a back flow in the regionΓ°ΒΕΈΕ½. Γ°ΒΕΈΕ½ Γ’β°Βͺ Γ°ΒΒβΉ Γ’β°Βͺ Γ°ΒΕΈΒ. Γ°ΒΕΈΕ½. The shear stress due to primary flow decreases with increase in Γ°ΒβΒ²Γ°ΒΕΈΒ. On the other hand, it increases due to secondary flow with increase in rotation parameter with constant Γ°ΒβΒΉΓ°Βββ for small times. It is also observed that the shear stress for large time with constant Γ°ΒβΒΉΓ°Βββ shows layers of separation in both primary and secondary flow due to high rotation
