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PMID: 34888739 Published · epublish English Journal Article

A Compact Model for Lyophilizer Equipment Capability Estimation.

AAPS PharmSciTech ·Vol. 23 ·No. 1 ·2021-12-09 ·页码 14

Kazarin P, Kessler W, Gong E, Yoon S, Liu H, Marx R, Bogner R, Alexeenko A

Abstract

This work presents a compact model for the equipment capability limit of a common configuration of pharmaceutical lyophilizers, a product chamber separated from the condenser by a duct and isolation valve, at a wide range of design parameters. The equipment capability limit is one of the most important characteristics determining the lyophilization design space for a particular product, container, and equipment combination. Experimental measurements of equipment capability are time-consuming and expensive, especially at the production scale. Numerical modeling using computational fluid dynamics may reduce the number of experiments and provide insights into the physics of the process with high resolution. The computational fluid dynamics (CFD) modeling has been used in this work to develop a compact model for lyophilizer equipment capability. This eliminates the need for end users to create a full CFD model of the equipment and process. Full CFD and compact model simulations for laboratory and pilot-scale lyophilizers have been compared with tunable diode laser absorption spectroscopy measurements of the water vapor mass flow during ice slab tests. The compact model results average deviation from the experimental data is within 10%, whereas the full CFD simulations are within 5%. The compact model is based on several key parameters which are the main characteristics of a lyophilizer affecting the equipment capability curve. These parameters are discussed, and their effect on the modeling results is shown.

Keywords
TDLAS compact model equipment capability freeze-drying
MeSH 主题词
Equipment Design Freeze Drying Hydrodynamics Spectrum Analysis Technology, Pharmaceutical
作者与单位
共 8 位作者,点击展开单位 / ORCID
Kazarin Petr
School of Aeronautics and Astronautics, Purdue University, West Lafayette, Indiana, 47907, USA. [email protected]. | Birck Nanotechnology Center, Purdue University, 1205 W State St., West Lafayette, Indiana, 47907, USA. [email protected].
Kessler William
Physical Science Inc., Andover, Massachusetts, 01810, USA.
Gong Emily
Physical Science Inc., Andover, Massachusetts, 01810, USA.
Yoon Seongkyu
Francis College of Engineering, University of Massachusetts Lowell, Lowell, Massachusetts, 01854, USA.
Liu Huolong
Francis College of Engineering, University of Massachusetts Lowell, Lowell, Massachusetts, 01854, USA.
Marx Richard
Francis College of Engineering, University of Massachusetts Lowell, Lowell, Massachusetts, 01854, USA.
Bogner Robin
Department of Pharmaceutical Sciences, University of Connecticut, Storrs, Connecticut, 06269, USA.
Alexeenko Alina
School of Aeronautics and Astronautics, Purdue University, West Lafayette, Indiana, 47907, USA. | Davidson School of Chemical Engineering, Purdue University, West Lafayette, Indiana, 47907, USA.
Article Info
Journal
AAPS PharmSciTech
Abbr.
AAPS PharmSciTech
ISSN
1530-9932
Corresponding email
Published
2021-12-09
电子出版
2021-00-09
页码
14
Language
English
Country/Region
United States
NLM ID
100960111
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