skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Squeeze flow between a sphere and a textured wall

Journal Article · · Physics of Fluids (1994)
DOI:https://doi.org/10.1063/1.4941301· OSTI ID:22482493

The motion of a millimetric sphere, translating in a viscous fluid towards a wettable textured wall, is investigated experimentally. The textures consist of square arrays of cylindrical or square micro-pillars, the height, width, and spacing of which are varied, keeping the periodicity small compared to the sphere radius. An interferometric device is used to measure the sphere vertical displacement, for distances between the sphere and the base of the pillars smaller than 0.1 sphere radius, and with a resolution of 200 nm. At a given distance from the top of the pillars, the sphere velocity is found to be significantly larger than the corresponding velocity for a smooth solid wall. A squeeze flow model of two adjacent fluid layers is developed in the lubrication approximation, one fluid layer having an effective viscosity that reflects the viscous dissipation through the array of pillars. The pressure field in the gap between the sphere and the textured surface is then used to obtain the drag force on the sphere and hence its velocity. Adjustment of the model to the velocity measurements yields the effective viscosity for a given texture. Finally, a correlation between the effective viscosity and the geometry of the pillar array is proposed.

OSTI ID:
22482493
Journal Information:
Physics of Fluids (1994), Vol. 28, Issue 2; Other Information: (c) 2016 AIP Publishing LLC; Country of input: International Atomic Energy Agency (IAEA); ISSN 1070-6631
Country of Publication:
United States
Language:
English

Similar Records

Laminar drag reduction in microchannels with liquid infused textured surfaces
Journal Article · Sat Oct 10 00:00:00 EDT 2020 · Chemical Engineering Science · OSTI ID:22482493

Dynamic force response of an open-ended squeeze film damper
Journal Article · Thu Apr 01 00:00:00 EST 1993 · Journal of Engineering for Gas Turbines and Power; (United States) · OSTI ID:22482493

Assessment of a Smoothed Particle Hydrodynamics Method for Thin Film on Textured Surfaces
Journal Article · Fri Jul 01 00:00:00 EDT 2016 · Transactions of the American Nuclear Society · OSTI ID:22482493