4.7 Article

Hybrid multi-zonal compartment modeling for continuous powder blending processes

Journal

INTERNATIONAL JOURNAL OF PHARMACEUTICS
Volume 602, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.ijpharm.2021.120643

Keywords

Multi-zonal compartmentalization; Hybrid model; Periodic section; Continuous powder blender; Powder mixing

Funding

  1. U.S. Food and Drug Administration (FDA) [DHHSFDA1U01FD00648701]

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The pharmaceutical industry is adopting emerging technologies to improve manufacturing robustness and process reliability, but faces challenges in areas like powder mixing. This study aims to address computational limitations with a multi-zonal compartment modeling approach, providing an efficient hybrid model for powder mixing.
To modernize drug manufacturing, the pharmaceutical industry has been moving towards implementing emerging technologies to enhance manufacturing robustness and process reliability for production of regulation compliant drug products. Although different science and risk based technologies, like Quality-by-Design, have been used to illustrate their potential, there still exist some underlying obstacles. Specifically, for the production of oral solid drug products, an in-depth process understanding, and predictive modeling of powder mixing in continuous powder blenders is one such major obstacle and originates from the current limitations of the experimental and modeling approaches. Though first principle based discrete element modeling (DEM) approach can address the above issues, it can get very computationally intensive which limits its applications for predictive modeling. In the proposed work, we aim to address this limitation using a multi-zonal compartment modeling approach, which is constructed from DEM. The approach provides a computationally efficient and mechanistically informed hybrid model. The application of the proposed approach is first demonstrated for a periodic section of the blender, followed by its extension for the entire continuous powder blender and the obtained model predictions are validated. The proposed approach provides an overall assessment of powder mixing along axial and radial directions, which is an important requirement for the quantification of blend uniformity. Given the low computational cost, the developed model can further be integrated within the predictive flowsheet model of the manufacturing line.

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