论文标题

粗糙表面上的接触角滞后部分第一部分:机械能量平衡框架

Contact Angle Hysteresis on Rough Surfaces Part I: Mechanical Energy Balance Framework

论文作者

Harvie, Dalton J. E.

论文摘要

使用作为动量的起点保守,得出了多相的机械能平衡方程,该方程是移动控制体积中存在的多个材料阶段和接口。该平衡应用于控制体积,该控制体积固定在三相接触线上,因为它在粗糙且化学均匀的固体的表面上前进。使用半定量模型来控制控制量内发生的材料行为,进行了魔力顺序分析以查找平衡中的术语是重要的,从而产生了一个方程,该方程可用于从三个相接触线周围发生的界面动力学知识中预测接触角滞后。除了这个方程式外,该理论还回答了润湿文献中已经讨论过的几个问题:即(静态)接触角滞后是三个相接触线周围条件的函数,而不是周围的流动系统;接触角磁滞是由界面“跳跃”散发能量而不是直接来自接触线变形的。需要这种界面动力学来预测接触角磁滞,但是应通过节能来解释这些动力学,并且;动态接触角取决于三相接触线周围的动能传输以及局部能量耗散。该框架是使用不可压缩的牛顿流体,可逆界面形成和零晶体固体的假设得出的 - 未来的工作可以放松这些假设,以使理论更普遍地适用。

Using as a starting point conservation of momentum, a multiphase mechanical energy balance equation is derived that accounts for multiple material phases and interfaces present within a moving control volume. This balance is applied to a control volume that is anchored to a three phase contact line as it advances over the surface of a rough and chemically homogeneous solid. Using semi-quantitative models for the material behaviour occurring within the control volume, an order-of-magnitude analysis is performed to find what terms within the balance are significant, producing an equation that can be used to predict contact angle hysteresis from a knowledge of interface dynamics occurring around the three phase contact line. In addition to this equation, the theory also answers several questions that have been discussed within the wetting literature: Namely that (static) contact angle hysteresis is a function of conditions around the three phase contact line, as opposed to the surrounding flow system; That contact angle hysteresis results from interface `jumps' that dissipate energy, rather than directly from contact line deformation; That interfacial dynamics is required to predict contact angle hysteresis, but that these dynamics should be interpreted via energy conservation, and; That dynamic contact angles depend on kinetic energy transport around the three phase contact line, as well as local energy dissipation. The framework has been derived using assumptions of incompressible Newtonian fluids, reversible interface formation and zero-strain solids -- future work could relax these assumptions to make the theory more generally applicable.

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