论文标题
雷利 - 贝纳德对流中的双重性和熔化边界
Bistability in Rayleigh-Bénard convection with a melting boundary
论文作者
论文摘要
将纯净和不可压缩的材料限制在两个板之间,以便从下方加热并从上方冷却。当它的熔化温度在这两个施加的温度之间组成时,将出现一个分离液体和实心相的界面。根据初始条件的不同,冻结或熔化发生,直到界面最终收敛于固定状态。使用相结合方法与Navier-Stokes方程相结合,以二维配置对该进化进行数值研究。改变模型的控制参数,我们表现出两种类型的平衡:扩散和对流。在后一种情况下,液相中的雷利 - 贝纳德对流塑造了固液的前沿,并观察到宏观的地形。讨论了一种预测这些平衡位置的简单方法,然后将其与数值模拟进行比较。在某些参数制度中,我们表明多个平衡可以根据初始条件共存。我们还证明,在这个双稳定的制度中,从扩散到对流平衡的过渡本质上是一种涉及有限振动扰动的非线性机制。
A pure and incompressible material is confined between two plates such that it is heated from below and cooled from above. When its melting temperature is comprised between these two imposed temperatures, an interface separating liquid and solid phases appears. Depending on the initial conditions, freezing or melting occurs until the interface eventually converges towards a stationary state. This evolution is studied numerically in a two-dimensional configuration using a phase-field method coupled with the Navier-Stokes equations. Varying the control parameters of the model, we exhibit two types of equilibria: diffusive and convective. In the latter case, Rayleigh-Bénard convection in the liquid phase shapes the solid-liquid front, and a macroscopic topography is observed. A simple way of predicting these equilibrium positions is discussed and then compared with the numerical simulations. In some parameter regimes, we show that multiple equilibria can coexist depending on the initial conditions. We also demonstrate that, in this bi-stable regime, transitioning from the diffusive to the convective equilibrium is inherently a nonlinear mechanism involving finite-amplitude perturbations.