
doi: 10.1137/0139031
Regular perturbation techniques are employed to further investigate the nature of the known equations governing fully developed forced and free convective flow between heated parallel walls. Particular attention is given to the solutions near the critical Rayleigh numbers, at which infinite flow rates are predictedby linear theory, and some tentative suggestions are presented on the transitional mechanism between the various flow regimes.
viscous dissipation, Absolute and convective instability and stability in hydrodynamic stability, perturbation expansions, Diffusion and convection, linearly heated vertical walls, Nonlinear effects in hydrodynamic stability, critical Rayleigh numbers
viscous dissipation, Absolute and convective instability and stability in hydrodynamic stability, perturbation expansions, Diffusion and convection, linearly heated vertical walls, Nonlinear effects in hydrodynamic stability, critical Rayleigh numbers
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