Many material science, coating, and manufacturing problems involve liquid films where defects that span the film thickness must be removed. Here, we study the surface-tension-driven leveling dynamics of a thin viscous film following closure of an initial hole. The dynamics of the film shape is described by a nonlinear evolution equation, for which we obtain a self-similar solution. The analytical results are verified using time-dependent numerical and experimental results for the profile shapes and the minimum film thickness at the center. The universal behavior we identify can be useful for characterizing the time evolution of the leveling process and estimating material properties from experiments.Received 23 October 2017DOI:https://doi.org/10.1103/PhysRevFluids.3.032001©2018 American Physical SocietyPhysics Subject Headings (PhySH)Research AreasInterfacial flowsSurface tension effectsPhysical SystemsThin fluid filmsTechniquesSelf-similarityFluid DynamicsNonlinear Dynamics
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