论文标题
流速 - 压力下降关系,用于在微流体实验中产生的细长管的新构型
Flow rate--pressure drop relations for new configurations of slender compliant tubes arising in microfluidics experiments
论文作者
论文摘要
我们研究了在最近的微流体实验中产生的两种新型几何构型中,研究了牛顿流体流量和可变形的微管之间的稳态流体结构相互作用。第一种构型是圆柱体流体通道,周围环绕着柔软的材料,带有刚性的外壁,而第二个是圆柱体流体通道,该圆柱体流体通道从软矩形材料板上挤出。在每种配置中,我们通过耦合润滑理论来得出非线性流量降低关系的数学理论,用于与线性弹性有关内管壁的变形的线性弹性。使用流导管的轴向细长及其轴对称性,我们从平面构造构型中获得了每种构型中径向位移的分析表达式。预测的位移场以及所得的封闭形式的流速 - 压力降低关系,通过Simbascular的双向耦合流体 - 结构相互作用求解器SVFSI验证了三维直接数值模拟的验证,显示出良好的一致性。我们还表明,弱流量惯性可以很容易地纳入派生中,从而进一步改善了较大的施加流速的理论和模拟之间的一致性。
We investigate the steady-state fluid--structure interaction between a Newtonian fluid flow and a deformable microtube in two novel geometric configurations arising in recent microfluidics experiments. The first configuration is a cylindrical fluidic channel surrounded by an annulus of soft material with a rigid outer wall, while the second one is a cylindrical fluidic channel extruded from a soft rectangular slab of material. In each configuration, we derive a mathematical theory for the nonlinear flow rate--pressure drop relation by coupling lubrication theory for the flow with linear elasticity for the inner tube wall's deformation. Using the flow conduit's axial slenderness and its axisymmetry, we obtain an analytical expression for the radial displacement in each configuration from a plane-strain configuration. The predicted displacement field, and the resulting closed-form flow rate--pressure drop relation, are each validated against three-dimensional direct numerical simulations via SimVascular's two-way-coupled fluid--structure interaction solver, svFSI, showing good agreement. We also show that weak flow inertia can be easily incorporated in the derivation, further improving the agreement between theory and simulations for larger imposed flow rates.