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Buoyancy-driven convection around exothermic autocatalytic chemical fronts traveling horizontally in covered thin solution layers

机译:在有盖薄溶液层中水平移动的放热自催化化学前沿周围的浮力驱动对流

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摘要

Spatial variations of concentrations and temperature across exothermic chemical fronts can initiate buoyancy-driven convection. We investigate here theoretically the spatiotemporal dynamics arising from such a coupling between exothermic autocatalytic reactions, diffusion, and buoyancy-driven flows when an exothermic autocatalytic front travels perpendicularly to the gravity field in a thin solution layer. To do so, we numerically integrate the incompressible Stokes equations coupled to evolution equations for the concentration of the autocatalytic product and temperature through buoyancy terms proportional to, respectively, a solutal RC and a thermal RT Rayleigh number. We show that exothermic fronts can exhibit new types of dynamics in the presence of convection with regard to the isothermal system. In the cooperative case (RC and RT are of the same sign), the dynamics asymptotes to one vortex surrounding, deforming, and accelerating the front much like in the isothermal case. However, persistent local stratification of heavy zones over light ones can be observed at the rear of the front when the Lewis number Le (ratio of thermal diffusivity over molecular diffusion) is nonzero. When the solutal and thermal effects are antagonistic (RC and R T of opposite sign), temporal oscillations of the concentration, temperature, and velocity fields can, in some cases, be observed in a reference frame moving with the front. The various dynamical regimes are discussed as a function of RC, RT, and Le. © 2009 American Institute of Physics.
机译:放热化学前沿的浓度和温度的空间变化会引发浮力驱动的对流。我们在这里理论上研究由放热自催化前沿垂直于重力场在薄溶液层中移动时放热自催化反应,扩散和浮力驱动的流动之间的这种耦合引起的时空动力学。为此,我们将不可压缩的斯托克斯方程与演化方程进行数值积分,以通过分别与溶质RC和热RT瑞利数成比例的浮力项来计算自催化产物和温度的浓度。我们表明,在等温系统对流的存在下,放热前沿可以展现出新型的动力学。在协作情况下(RC和RT的符号相同),动力学渐近到一个涡旋,围绕,变形和加速了锋面,就像在等温情况下一样。但是,当路易斯数Le(分子的热扩散率与分子扩散率之比)不为零时,可以在前面的后部观察到较重区域上较重区域的持续局部分层。当溶液和热的作用相反(RC和R T的符号相反)时,在某些情况下,可以在随前移的参考框架中观察到浓度,温度和速度场的时间振动。根据RC,RT和Le讨论了各种动力学方案。 ©2009美国物理研究所。

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