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A procedure to optimize scale-up for the primary drying phase of lyophilization
T Kramer1, D M Kremer, M J Pikal
1Parenteral Center of Emphasis, Pfizer, Inc., Global Research and Development, Groton/New London Laboratories, Eastern Point Road, Groton, Connecticut 06340, USA.
Journal of Pharmaceutical Sciences
|May 29, 2008
Summary
This study combines freeze dry microscopy and numerical modeling to optimize lyophilization scale-up. The developed method accurately predicts primary drying, reducing development time and material waste.
Area of Science:
- Pharmaceutical Sciences
- Chemical Engineering
- Process Development
Background:
- Lyophilization scale-up for primary drying is challenging.
- Accurate prediction of freeze-drying cycles is crucial for efficiency and material preservation.
Purpose of the Study:
- To develop a procedure for facilitating the scale-up of the primary drying phase in lyophilization.
- To integrate empirical testing with numerical modeling for predictive process development.
Main Methods:
- Utilizing freeze dry microscopy to determine lyophile collapse temperature.
- Employing manometric temperature measurement for mass transfer resistance characterization.
- Applying a semi-empirical computational heat and mass transfer model.
Main Results:
- The computational model accurately predicted primary drying data at both laboratory and pilot scales.
- Excellent agreement was observed between experimental and modeled sublimation interface temperature profiles and drying times.
- The model successfully predicted optimal operational settings for pilot-scale lyophilizers.
Conclusions:
- The combined empirical and modeling approach effectively facilitates lyophilization scale-up.
- This procedure reduces the time and material required for freeze-drying cycle development.
- The method offers potential for optimizing commercial freeze-drying processes.
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