Enhanced Mixing and Reaction in Converging Flows: Theory and Pore‐Scale Imaging
Satoshi Izumoto, Joris Heyman, Johan Alexander Huisman, Kevin De Vriendt, Cyprien Soulaine, Francesco Gomez, Hervé Tabuteau, Yves Méheust 等 9 位
Centre National de la Recherche Scientifique Forschungszentrum Jülich Institut de Physique de Rennes Géosciences Rennes
内容与影响
Mixing fronts at the interface of opposing flows are compressed at a constant rate. The resulting exponential stretching of fluid elements leads to enhanced chemical gradients and biogeochemical processes. This process is similar as what occurs in the pore space of 3D chaotic flows. However, it is so far not known how such fluid compression controls the amplitude of mixing and reaction rates in porous media. Here we derive analytical predictions for the mixing width, the maximum reaction rate and the reaction intensity in compressed mixing fronts as a function of the Péclet and Damköhler numbers. We developed an experimental setup providing pore scale measurements of mixing and reaction rates in mixing fronts at the interface of converging flows. The theory accurately predicts the scaling of mixing and reaction with the Péclet number both in porous micromodels and simple Hele‐Shaw cells. Additionally, we found that the presence of pore scale heterogeneities in the porous micromodels enhances reaction rates by a factor of 4 compared to the Hele‐Shaw cells. Using numerical simulations of pore scale velocity fields, we attributed this phenomenon to the enhancement of pore‐scale compression due to the presence of grains in accelerating flows. These findings provide new insights into the dynamics of mixing‐induced reactions in porous media.
逐年被引趋势
关键指标
同类平均 = 1
同领域 · 同年份 · 同类型
Google Scholar 与 OpenAlex 的被引统计范围不同,数值存在差异属正常。
AI 辅助阅读
依据:摘要
回答优先基于摘要、文献信息与可获取全文;依据不足时会明确说明。
学术脉络
学科主题
物理Groundwater flow and contamination studies
Theoretical and Computational Physics · NMR spectroscopy and applications
参考文献 66
此处列出前 3 条
施引文献 12
按被引量排序,此处列出前 3 条