4.5 Article

The effect of surface tension on the gravity-driven thin film flow of Newtonian and power-law fluids

期刊

COMPUTERS & FLUIDS
卷 64, 期 -, 页码 83-90

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.compfluid.2012.05.009

关键词

Thin film flows; Surface tension; Shear-thinning effect; Capillary ridge

资金

  1. NIH (from the National Institute of Allergy and Infectious Diseases) [R21 AI082697]
  2. NIH (from the National Institute of Child Health & Human Development) [K12 HD052027]
  3. NSF [MRI 0821625]
  4. Division Of Computer and Network Systems
  5. Direct For Computer & Info Scie & Enginr [0821625] Funding Source: National Science Foundation

向作者/读者索取更多资源

Gravity-driven thin film flow is of importance in many fields, as well as for the design of polymeric drug delivery vehicles, such as anti-HIV topical microbicides. There have been many prior works on gravity-driven thin films. However, the incorporation of surface tension effect has not been well studied for non-Newtonian fluids. After surface tension effect was incorporated into our 2D (i.e. 1D spreading) power-law model, we found that surface tension effect not only impacted the spreading speed of the microbicide gel, but also had an influence on the shape of the 2D spreading profile. We observed a capillary ridge at the front of the fluid bolus. Previous literature shows that the emergence of a capillary ridge is strongly related to the contact line fingering instability. Fingering instabilities during epithelial coating may change the microbicide gel distribution and therefore impact how well it can protect the epithelium. In this study, we focused on the capillary ridge in 2D flow and performed a series of simulations and showed how the capillary ridge height varies with other parameters, such as surface tension coefficient. inclination angle, initial thickness, and power-law parameters. As shown in our results, we found that capillary ridge height increased with higher surface tension, steeper inclination angle, bigger initial thickness, and more Newtonian fluids. This study provides the initial insights of how to optimize the flow and prevent the appearance of a capillary ridge and fingering instability. (C) 2012 Elsevier Ltd. All rights reserved.

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