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Experimental Methodology for Estimation of Local Heat Fluxes and Burning Rates in Steady Laminar Boundary Layer Diffusion Flames
Published on: June 1, 2016
Estimation of the concentration boundary layer adjacent to a flat surface using computational fluid dynamics.
Patrick D Sinko1, Louis Parker2, Lisa Prahl Wittberg2
1Department of Pharmacy, Uppsala Biomedical Center, Uppsala University, 751 23 Uppsala, Sweden.
We developed a computational fluid dynamics (CFD) method to predict the concentration boundary layer in dissolution-permeation (D/P) experiments. This approach enhances the predictability and comparability of in vitro drug absorption studies during preclinical development.
Area of Science:
- Pharmacokinetics and Drug Metabolism
- Computational Fluid Dynamics
- Preclinical Drug Development
Background:
- Dissolution-permeation (D/P) experiments are crucial for preclinical drug development, offering better predictability than traditional methods.
- Comparing in vitro drug absorption across different D/P setups is challenging due to inconsistent reporting of apparent permeability.
- A standardized method is needed to accurately characterize D/P devices and improve inter-study comparability.
Purpose of the Study:
- To develop and validate a computational fluid dynamics (CFD) approach for predicting the concentration boundary layer in D/P experiments.
- To enable accurate characterization of complex D/P apparatuses where analytical solutions are unavailable.
- To improve the predictability and comparability of in vitro drug absorption data.
Main Methods:
- Solving Navier-Stokes and continuity equations in 2D using MATLAB and COMSOL v6.1.
- Utilizing finite element methods to predict momentum and concentration boundary layers.
- Developing a MATLAB algorithm to calculate boundary layer edges based on Blasius boundary layer flow analysis.
Main Results:
- The developed methodology accurately estimated momentum and concentration boundary layers for high Schmidt numbers (Sc ~ 1000).
- Results showed good agreement with the Blasius solution (within 14%) and accepted Schmidt number correlations (within 6.6%).
- The CFD approach provides a reliable method for analyzing D/P devices.
Conclusions:
- The proposed CFD-based methodology enables precise characterization of concentration boundary layers in D/P experiments.
- This approach facilitates more accurate and comparable in vitro drug absorption assessments in preclinical development.
- The study provides a valuable tool for researchers working with complex D/P apparatuses.
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