Fries N, Dreyer M
Center of Applied Space Technology and Microgravity (ZARM), University of Bremen, Am Fallturm, 28359 Bremen, Germany.
J Colloid Interface Sci. 2008 Nov 1;327(1):125-8. doi: 10.1016/j.jcis.2008.08.018. Epub 2008 Aug 13.
We investigate the initial moments of capillary rise of liquids in a tube. In this period both inertia and viscous flow losses balance the pressure generated by the meniscus curvature (capillary pressure). It is known that the very first stage is purely dominated by inertial forces, where subsequently the influence of viscosity increases (visco-inertial flow). Finally the effect of inertia vanishes and the flow becomes purely viscous. In this study we derive the times and meniscus heights at which the transition between the time periods occur. This is done in an attempt to provide a method to determine a priori which terms of the momentum balance are relevant for a given problem. Analytic solutions known from previous literature are discussed and the time intervals of their validity compared. The predicted transition times and the calculated heights show good agreement with experimental results from literature. The results are also discussed in dimensionless form and the limitations of the calculations are pointed out.
我们研究了液体在管中毛细上升的初始阶段。在此期间,惯性和粘性流动损失与弯月面曲率产生的压力(毛细压力)相平衡。众所周知,最初阶段完全由惯性力主导,随后粘度的影响增加(粘-惯性流动)。最后,惯性效应消失,流动变为纯粘性流动。在本研究中,我们推导了不同时间段之间转变发生的时间和弯月面高度。这样做是为了提供一种方法,以便先验地确定对于给定问题动量平衡的哪些项是相关的。讨论了先前文献中已知的解析解,并比较了它们的有效时间间隔。预测的转变时间和计算出的高度与文献中的实验结果显示出良好的一致性。结果也以无量纲形式进行了讨论,并指出了计算的局限性。