In-Line Optimization and Control of an Industrial Freeze-Drying Process for Pharmaceuticals

被引:55
|
作者
Pisano, Roberto [1 ]
Fissore, Davide [1 ]
Velardi, Salvatore A. [1 ]
Barresi, Antonello A. [1 ]
机构
[1] Politecn Torino, Dipartimento Sci Mat & Ingn Chim, I-10129 Turin, Italy
关键词
freeze-drying/lyophilization; mathematical model; processing; algorithm; dynamic simulation; MANOMETRIC TEMPERATURE-MEASUREMENT; LASER ABSORPTION-SPECTROSCOPY; ANALYTICAL TECHNOLOGY TOOL; PRODUCT TEMPERATURE; PRESSURE RISE; LYOPHILIZATION; VIALS; VACUUM; DRYER; MODEL;
D O I
10.1002/jps.22166
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
This paper deals with the in-line optimization and control of the freeze-drying process of pharmaceuticals in vials. The proposed control system, named LyoDriver, uses a mathematical model of the process to calculate the values of the temperature of the heating fluid: the goal is to minimize the time required to get the desired amount of residual water in the dried product, and to maintain product temperature below the maximum allowed value, thus preserving product quality. The values of product temperature and residual ice content, as well as other parameters, are required to perform the calculations: these variables are estimated in-line by means of the Dynamic Parameters Estimation algorithm, an advanced tool based on the pressure rise test, but also other monitoring systems can be used. Two different control algorithms are presented and investigated by means of mathematical simulation and experiments carried out in a small industrial-type apparatus (LyoBeta 25 by Telstar). Results show the effectiveness of LyoDriver in a wide range of operating conditions, even when the process becomes mass-transfer controlled, or when the operating pressure is changed. (C) 2010 Wiley-Liss, Inc. and the American Pharmacists Association J Pharm Sci 99:4691-4709, 2010
引用
收藏
页码:4691 / 4709
页数:19
相关论文
共 50 条
  • [21] Process analytical technology for monitoring pharmaceuticals freeze-drying - A comprehensive review
    Fissore, Davide
    Pisano, Roberto
    Barresi, Antonello A.
    DRYING TECHNOLOGY, 2018, 36 (15) : 1839 - 1865
  • [22] Use of soft sensors to monitor a pharmaceuticals freeze-drying process in vials
    Bosca, Serena
    Barresi, Antonello A.
    Fissore, Davide
    PHARMACEUTICAL DEVELOPMENT AND TECHNOLOGY, 2014, 19 (02) : 148 - 159
  • [23] An automatic computer vision pipeline for the in-line monitoring of freeze-drying processes
    Colucci, Domenico
    Morra, Lia
    Zhang, Xiaoyang
    Fissore, Davide
    Lamberti, Fabrizio
    COMPUTERS IN INDUSTRY, 2020, 115
  • [24] Optimization of process parameters for freeze-drying of Letinus edodes
    Zhang, Wei
    Zhang, Liwei
    Wei, Shi
    Chi, Lijun
    Jiang, Yuntao
    International Agricultural Engineering Journal, 2010, 19 (03): : 38 - 44
  • [25] The International Conference on the Freeze-Drying of Pharmaceuticals and Biologicals
    Anchordoquy, Thomas J.
    THERAPEUTIC DELIVERY, 2011, 2 (01) : 15 - 17
  • [26] Meeting the challenges in freeze-drying of pharmaceuticals and biologicals
    Friess, Wolfgang
    Winter, Gerhard
    EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2013, 85 (02) : 161 - 161
  • [27] INDUSTRIAL FREEZE-DRYING FROM KNOW-HOW OF A FREEZE-DRYING PLANT
    KAMPS, H
    ERNAHRUNGSWIRTSCHAFT, 1977, (08): : 379 - 381
  • [28] An Experimental-Based Approach to Construct the Process Design Space of a Freeze-Drying Process: An Effective Tool to Design an Optimum and Robust Freeze-Drying Process for Pharmaceuticals
    Assegehegn, Getachew
    Brito-de la Fuente, Edmundo
    Franco, Jose M.
    Gallegos, Crispulo
    JOURNAL OF PHARMACEUTICAL SCIENCES, 2020, 109 (01) : 785 - 796
  • [29] A REVIEW OF THE FREEZE-DRYING PROCESS
    MACKENZIE, AP
    CRYOBIOLOGY, 1988, 25 (06) : 574 - 574
  • [30] Determination of End Point of Primary Drying in Freeze-Drying Process Control
    Sajal M. Patel
    Takayuki Doen
    Michael J. Pikal
    AAPS PharmSciTech, 2010, 11 : 73 - 84