Tiani R, Rongy L
Nonlinear Physical Chemistry Unit, Université libre de Bruxelles (ULB), Faculté des Sciences, CP231, 1050 Brussels, Belgium.
Philos Trans A Math Phys Eng Sci. 2023 Apr 17;381(2245):20220080. doi: 10.1098/rsta.2022.0080. Epub 2023 Feb 27.
When bimolecular fronts form in solutions, their dynamics is likely to be affected by chemically driven convection such as buoyancy- and Marangoni-driven flows. It is known that front dynamics in the presence of buoyancy-driven convection can be predicted solely on the basis of the one-dimensional reaction-diffusion concentration profiles but that those predictions fail for Marangoni-driven convection. With a two-dimensional reaction-diffusion-Marangoni convection model, we analyze here convective effects on the time scalings of the front properties, together with the influence of reaction reversibility and of the ratio of initial reactants' concentrations on the front dynamics. The effect of buoyancy forces is here neglected by assuming the reactive system to be in zero-gravity condition and/or the solution density to be spatially homogenous. This article is part of the theme issue 'New trends in pattern formation and nonlinear dynamics of extended systems'.
当溶液中形成双分子前沿时,其动力学可能会受到化学驱动对流的影响,如浮力驱动流和马兰戈尼驱动流。已知在存在浮力驱动对流的情况下,前沿动力学可以仅基于一维反应扩散浓度分布来预测,但这些预测对于马兰戈尼驱动对流是失败的。在这里,我们使用二维反应扩散 - 马兰戈尼对流模型,分析对流对前沿特性时间尺度的影响,以及反应可逆性和初始反应物浓度比在前沿动力学上的影响。通过假设反应系统处于零重力条件和/或溶液密度在空间上均匀,浮力的影响在这里被忽略。本文是主题为“扩展系统图案形成和非线性动力学的新趋势”的一部分。