Physics of Fluids · 2005 · 272 citations · 26 references
EngineeringFluid MechanicsMechanical EngineeringCavity FlowMechanicsRheologyHydrodynamic LubricationSurface TensionLubrication FlowsSolid MechanicsPiston-ring LubricationRheological Constitutive EquationLubrication FlowViscoplastic FluidDeformable Solid BoundariesCivil EngineeringFluid-solid InteractionMechanics Of MaterialsRigid Cavity
Lubrication flows near deformable solid boundaries arise in coating, printing, biological systems, and suspensions. The study investigates how surface topography influences elastohydrodynamic interactions in flow between a rigid cavity and a flexible wall. The authors couple the Reynolds equation to a spring‑tension wall model and numerically solve the resulting nonlinear ODEs to obtain pressure profiles and wall positions. When wall modulus or tension dominates viscous forces, the wall barely deforms and a pressure mountain and valley appear; when they are weak, the wall conforms to the cavity shape and pressure profiles may show only a valley, demonstrating that cavity shape significantly alters pressure and deformation and that surface topography can markedly modify elastohydrodynamic interactions.
Lubrication flows near deformable solid boundaries occur in a diverse range of settings including coating and printing processes, biological systems, and suspensions. In order to examine the effect of surface topography on the elastohydrodynamic interactions that arise in these flows, the flow between a rigid cavity and a flexible wall is studied. Reynolds equation for the fluid is coupled to a model for the wall which is backed by a series of springs and/or held by a uniform tension force. The resulting nonlinear ordinary differential equations are then solved numerically to obtain pressure profiles and wall positions. When the wall modulus or tension is large relative to viscous forces, the wall hardly deforms and both a pressure mountain and valley are observed due to the gap change produced by the cavity topography. When the wall modulus and tension are small relative to viscous forces, the wall easily deforms and assumes a shape similar to that of the cavity. The pressure profiles are also dramatically altered and in some cases show only a valley without a mountain. Cavity shape is found to have a significant influence on both the pressure profiles and the wall deformation. The results suggest that surface topography may significantly modify the elastohydrodynamic interactions that arise in lubrication flows near deformable solid boundaries.
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Laminar Flow and Convective Transport Processes
L. Gary Leal · Drying Technology · 1993 · 246 citations