0000000000414434

AUTHOR

Sarah Kindgen

showing 2 related works from this author

Computational Fluid Dynamics Simulation of Hydrodynamics and Stresses in the PhEur/USP Disintegration Tester Under Fed and Fasted Fluid Characteristi…

2015

ABSTRACT: Disintegration of oral solid dosage forms is a prerequisite for drug dissolution and absorption and is to a large extent dependent on the pressures and hydrodynamic conditions in the solution that the dosage form is exposed to. In this work, the hydrodynamics in the PhEur/USP disintegration tester were investigated using computational fluid dynamics (CFD). Particle image velocimetry was used to validate the CFD predictions. The CFD simulations were performed with different Newtonian and non-Newtonian fluids, representing fasted and fed states. The results indicate that the current design and operating conditions of the disintegration test device, given by the pharmacopoeias, are n…

Pharmaceutical ScienceComputational fluid dynamicsDosage formsymbols.namesakeNewtonian fluidShear stressPressureTechnology PharmaceuticalDissolution testingComputer SimulationDosage FormsChemistrybusiness.industryViscosityReynolds numberMechanicsFastingModels TheoreticalBody FluidsParticle image velocimetrySolubilitysymbolsHydrodynamicsCurrent (fluid)businessRheologyShear StrengthTabletsJournal of pharmaceutical sciences
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A Novel Disintegration Tester for Solid Dosage Forms Enabling Adjustable Hydrodynamics.

2016

A modified in vitro disintegration test device was designed that enables the investigation of the influence of hydrodynamic conditions on disintegration of solid oral dosage forms. The device represents an improved derivative of the compendial PhEur/USP disintegration test device. By the application of a computerized numerical control, a variety of physiologically relevant moving velocities and profiles can be applied. With the help of computational fluid dynamics, the hydrodynamic and mechanical forces present in the probe chamber were characterized for a variety of device moving speeds. Furthermore, a proof of concept study aimed at the investigation of the influence of hydrodynamic condi…

Materials scienceTime FactorsPharmaceutical ScienceAdministration Oral02 engineering and technologyComputational fluid dynamics030226 pharmacology & pharmacyDosage form03 medical and health sciences0302 clinical medicineShear stressTechnology PharmaceuticalComputer SimulationImmediate releasebusiness.industryMechanicsModels Theoretical021001 nanoscience & nanotechnologyBody FluidsFasted stateHydrodynamics0210 nano-technologybusinessShear StrengthSoftwareTabletsJournal of pharmaceutical sciences
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