论文标题
多孔媒体对流中的拉格朗日动力和传热
Lagrangian dynamics and heat transfer in porous media convection
论文作者
论文摘要
我们通过孔隙尺度建模报告了通过随机多孔介质对雷利 - 贝纳德对流的数值研究,重点是流体颗粒的拉格朗日动力学和各种孔隙率$ ϕ $的热传递。由于多孔介质与相干流量结构之间的相互作用,因此发现该流量是高度异质的,由具有强流强度强的对流通道和低速速度的停滞区组成。由于多孔结构引起的流场的修饰对流体颗粒的动力学有重大影响。沿轨迹的粒子位移的评估表明,随着$ ϕ $的减少,长时间的异常运输出现,这与流体的拉格朗日速度的长时间相关有关。随着孔隙率的降低,垂直速度和温度波动之间的互相关增强了,这揭示了一种增强多孔介质对流传热的机制。
We report a numerical study of Rayleigh--Bénard convection through random porous media using pore-scale modelling, focusing on the Lagrangian dynamics of fluid particles and heat transfer for varied porosities $ϕ$. Due to the interaction between the porous medium and the coherent flow structures, the flow is found to be highly heterogeneous, consisting of convection channels with strong flow strength and stagnant regions with low velocities. The modifications of flow field due to porous structure have a significant influence on the dynamics of fluid particles. Evaluation of the particle displacement along the trajectory reveals the emergence of anomalous transport for long times as $ϕ$ is decreased, which is associated with the long-time correlation of Lagrangian velocity of the fluid. As porosity is decreased, the cross-correlation between the vertical velocity and temperature fluctuation is enhanced, which reveals a mechanism to enhance the heat transfer in porous media convection.