Aller au contenu principal
Accès ouvert déclaré2026article

Internal Architecture of a 3D-Printed Ti-6Al-4V Capsule and Preliminary FEM Simulation of Diffusion: CAD-Informed Modeling with Qualitative Micro-CT Characterization

0Citations signalées
5Institutions associées
2Pays d’affiliation

Résumé fourni par la source

A central challenge in implantable local-delivery systems is to determine how internal device architecture shapes solute transport before drug-specific loading, release, and biological validation are available. This study examines the reservoir–channel architecture of the previously characterized KTD/KTM Ti-6Al-4V capsule platform and evaluates its effect on diffusion-dominated concentration redistribution in a preliminary finite-element model. Micro-computed tomography (micro-CT) was used for qualitative characterization of the as-fabricated internal architecture, whereas the representative computational geometry was defined from the capsule computer-aided design (CAD) concept and previously reported dimensions. Transport of a nominal, fully dissolved species was modeled in COMSOL Multiphysics 5.2 using Fickian diffusion with a prescribed effective diffusion coefficient (Deff = 1 × 10−9 m2/s) and a nominal peak initial concentration scale of 1.0 mol/m3. Under the closed no-flux condition, the internal control-point concentration decreased to near zero within approximately 4 h, while the remote outer control point reached approximately 0.002–0.003 mol/m3 by 6 h. A one-sided Dirichlet sink produced a more directional concentration field, demonstrating the sensitivity of the simulated distribution to geometry and boundary conditions. These results describe an idealized, CAD-informed diffusion problem and do not represent experimentally validated drug-release kinetics, therapeutic concentrations, or biological performance. The model is therefore intended as a design-phase framework for guiding subsequent drug-specific transport and experimental validation studies.

Institutions

Sujets associés

Drug Transport and Resistance MechanismsDrug Solubulity and Delivery SystemsOrthopaedic implants and arthroplasty

BNTIC News n’est pas le producteur de ces données. Métadonnées interrogées à la demande auprès de OpenAlex (CC0). Sources et limites.