Search results for "Hagen–Poiseuille equation"

showing 4 items of 14 documents

Self-Assembly of Polymeric Particles in Poiseuille Flow: A Hybrid Lattice Boltzmann/External Potential Dynamics Simulation Study

2017

We present a hybrid simulation method which allows one to study the dynamical evolution of self-assembling (co)polymer solutions in the presence of hydrodynamic interactions. The method combines an established dynamic density functional theory for polymers that accounts for the nonlocal character of chain dynamics at the level of the Rouse model, the external potential dynamics (EPD) model, with an established Navier–Stokes solver, the Lattice Boltzmann (LB) method. We apply the method to study the self-assembly of nanoparticles and vesicles in two-dimensional copolymer solutions in a typical microchannel Poiseuille flow profile. The simulations start from fully mixed systems which are sudd…

SpinodalMaterials sciencePolymers and PlasticsSpinodal decompositionOrganic ChemistryLattice Boltzmann methodsNucleation02 engineering and technologyMechanics010402 general chemistry021001 nanoscience & nanotechnologyHagen–Poiseuille equation01 natural sciences0104 chemical sciencesInorganic ChemistryShear rateCondensed Matter::Soft Condensed MatterPhysics::Fluid DynamicsMaterials ChemistryPeriodic boundary conditions0210 nano-technologyShear flow
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Large-eddy simulations of turbulent flow with heat transfer in simple and complex geometries using Harwell-FLOW3D

1996

Abstract Large-eddy simulation (LES) results are presented and discussed for the turbulent flow with heat transfer in different geometrical configurations, including a plane channel, a channel bearing transverse square ribs on one of the walls, and a crossed-corrugated air heater. They were obtained using the computational fluid dynamics (CFD) code Harwell-FLOW3D (Release 2), finite-volume grids having up to 423 nodes, and the Smagorinsky subgrid model with several variants regarding near-wall damping and wall boundary conditions. The first problem (plane turbulent Poiseuille flow with heat transfer) was mainly used as a benchmark to investigate the influence of numerical methods (pressure-…

business.industryTurbulenceApplied MathematicsPrandtl numberTurbulence modelFluid mechanicsGeometryMechanicsComputational fluid dynamicsHeat TransferHagen–Poiseuille equationLarge Eddy SimulationSubgrid modelPhysics::Fluid Dynamicssymbols.namesakeModelling and SimulationModeling and SimulationHeat transfersymbolsBoundary value problemCFDbusinessSettore ING-IND/19 - Impianti NucleariMathematicsLarge eddy simulationApplied Mathematical Modelling
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2018

Star-shaped polymers show a continuous change of properties from flexible linear chains to soft colloids, as the number of arms is increased. To investigate the effect of macromolecular architecture on the flow properties, we employ computer simulations of single chain and star polymers as well as of their mixtures under Poiseuille flow. Hydrodynamic interactions are incorporated through the multi-particle collision dynamics (MPCD) technique, while a bead-spring model is used to describe the polymers. For the ultradilute systems at rest, the polymers are distributed uniformly in the slit channel, with a weak dependence on their number of arms. Once flow is applied, however, we find that the…

chemistry.chemical_classificationMaterials sciencePolymers and PlasticsMicrofluidics02 engineering and technologyGeneral ChemistryPolymer021001 nanoscience & nanotechnologyHagen–Poiseuille equation01 natural sciencesViscoelasticityLift (force)StarsChain (algebraic topology)Flow (mathematics)chemistryChemical physics0103 physical sciences010306 general physics0210 nano-technologyPolymers
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Vortex dynamics in rotating counterflow and plane Couette and Poiseuille turbulence in superfluid Helium

2008

An equation previously proposed to describe the evolution of vortex line density in rotating counterflow turbulent tangles in superfluid helium is generalized to incorporate nonvanishing barycentric velocity and velocity gradients. Our generalization is compared with an analogous approach proposed by Lipniacki, and with experimental results by Swanson et al. in rotating counterflow, and it is used to evaluate the vortex density in plane Couette and Poiseuille flows of superfluid helium.

quantum vorticePhysicsCondensed Matter::Quantum GasesTurbulencePlane (geometry)Condensed Matter::OtherFOS: Physical sciencesLaminar flowVorticityCondensed Matter PhysicsHagen–Poiseuille equationNonlinear Sciences::Cellular Automata and Lattice Gasessuperfluid turbulenceElectronic Optical and Magnetic MaterialsVortexCondensed Matter - Other Condensed MatterPhysics::Fluid Dynamicscoflow and counterflowClassical mechanicsSettore MAT/07 - Fisica MatematicaCouette flowSuperfluid helium-4Other Condensed Matter (cond-mat.other)
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