论文标题
一个低马赫数的离子液体流体动力学模型
A Low Mach Number Fluctuating Hydrodynamics Model For Ionic Liquids
论文作者
论文摘要
我们为离子液体提供了一个新的中尺度模型,该模型基于低马赫数的波动流体动力学制剂,用于多组分充电物种。低马赫数方法从完全可压缩的方程式中消除了声波,从而导致计算有效的不可压制公式。该模型使用吉布斯自由能函数,其中包括混合,界面能和静电贡献的焓。这些导致质量方程中的新四阶项和动量方程中的可逆应力。我们使用[DMPI+] [F6P-]的参数(一种广泛研究的室温离子液体(RTIL))对模型进行校准,并在两个维度和三个维度上以数值证明了在平衡下的介质结构形成。在具有电极边界的模拟中,测得的双层电容随电压降低,与理论预测和RITIL的实验测量一致。最后,我们提出了一个剪切电流示例,以证明该方法可用于对电动流进行建模。
We present a new mesoscale model for ionic liquids based on a low Mach number fluctuating hydrodynamics formulation for multicomponent charged species. The low Mach number approach eliminates sound waves from the fully compressible equations leading to a computationally efficient incompressible formulation. The model uses a Gibbs free energy functional that includes enthalpy of mixing, interfacial energy, and electrostatic contributions. These lead to a new fourth-order term in the mass equations and a reversible stress in the momentum equations. We calibrate our model using parameters for [DMPI+][F6P-], an extensively-studied room temperature ionic liquid (RTIL), and numerically demonstrate the formation of mesoscopic structuring at equilibrium in two and three dimensions. In simulations with electrode boundaries the measured double layer capacitance decreases with voltage, in agreement with theoretical predictions and experimental measurements for RTILs. Finally, we present a shear electroosmosis example to demonstrate that the methodology can be used to model electrokinetic flows.