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      Spatio-temporal Patterns in Inclined Layer Convection

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          Abstract

          This paper reports on a theoretical analysis of the rich variety of spatio-temporal patterns observed recently in inclined layer convection at medium Prandtl number when varying the inclination angle \(\gamma\) and the Rayleigh number \(R\). The present numerical investigation of the inclined layer convection system is based on the standard Oberbeck-Boussinesq equations. The patterns are shown to originate from a complicated competition of buoyancy-driven and shear-flow driven pattern forming mechanisms. The former are expressed as \rm{longitudinal} convection rolls with their axes oriented parallel to the incline, the latter as perpendicular \rm{transverse} rolls. Along with conventional methods to study roll patterns and their stability, we employ direct numerical simulations in large spatial domains, comparable with the experimental ones. As a result, we determine the phase diagram of the characteristic complex 3D convection patterns above onset of convection in the \(\gamma-R\) plane, and find that it compares very well with the experiments. In particular we demonstrate that interactions of specific Fourier modes, characterized by a resonant interaction of their wavevectors in the layer plane, are key to understanding the pattern morphologies.

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          Author and article information

          Journal
          2015-07-07
          2016-01-26
          Article
          10.1017/jfm.2016.186
          1507.01734
          13ad39a0-16a6-4c39-ac9a-3d6304e89a1b

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          26 pages, 20 figures, 1 table. Changes in this version: extensive restructuring according to reviewer comments and modification to order of authors
          physics.flu-dyn nlin.PS

          Thermal physics & Statistical mechanics,Nonlinear & Complex systems
          Thermal physics & Statistical mechanics, Nonlinear & Complex systems

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