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This steady flow structure is confirmed by the corresponding direct numerical simulation.
Example systems are a liquid flowing through a pipe or capillary, air moving across an aeroplane wing, and plasma motion in a stars magnetic field.
The steady flow in a rotating sphere is investigated by asymptotic analysis in the limit of strong precession.
The depth-averaged model is found to accurately predict all the steady modes of propagation observed experimentally, and provides a comprehensive picture of the underlying steady bifurcation structure.
However, for sufficiently large imposed flow rates, we find that initially centred bubbles do not converge onto a steady mode of propagation.
Fluid Mechanics Research International Journal (FMRIJ) is the leading International Journal publishes high quality Peer reviewed papers in all fields of fluid mechanics.
The Journal dealing with the translations of important theoretical and experimental papers on Chemical Engineering, Fluid mechanics, Meteorology, Biology, Aeronautics and both Non-Newtonian Flow, Non-Newtonian Fluid Mechanics etc.
IJFMR will bring you top quality research papers from an international body of contributors and a team of distinguished editors from the world's leading institutions engaged in all aspects of fluid mechanics. Nikishov EXPERIMENTAL AND NUMERICAL PREDICTION OF SLURRY FLOW IN PIPE: A REVIEW Rahul Mishra, K. Ghanta, Amar Nath Mullick, Shobha Lata Sinha HEAT AND MASS TRANSFER ON MHD FREE CONVECTIVE FLOW OVER AN INFINITE NONCONDUCTING VERTICAL FLAT POROUS PLATE M.
IJFMR succeeded Fluid Mechanics Research beginning with Volume 22.
Heretofore, Fluid Mechanics Research concentrated on publishing translations of important theoretical and experimental papers from the former Soviet Union.
Now, the broader Journal invites contributions in English from the entire international research community, but will continue to publish translations of seminal articles from the same institutions that have never appeared in Western literature as well as Japanese work that could otherwise escape notice.