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冷冻储存条件下容器密封系统的密封性能:血清橡胶塞的非线性有限元模拟

Sealing Behaviour of Container Closure Systems under Frozen Storage Conditions: Nonlinear Finite Element Simulation of Serum Rubber Stoppers.

作者信息

Nieto Alejandra, Roehl Holger

机构信息

Pharmaceutical Development & Supplies-Biologics Europe, F. Hoffmann-La Roche Ltd., Basel, Switzerland

Pharmaceutical Development & Supplies-Biologics Europe, F. Hoffmann-La Roche Ltd., Basel, Switzerland.

出版信息

PDA J Pharm Sci Technol. 2018 Jul-Aug;72(4):367-381. doi: 10.5731/pdajpst.2017.008391. Epub 2018 Mar 15.

Abstract

There has been a growing interest in recent years in the assessment of suitable vial/stopper combinations for storage and shipment of frozen drug products. Considering that the glass transition temperature (T) of butyl rubber stoppers used in container closure systems (CCSs) is between -55 °C to -65 °C, a storage or shipment temperature of a frozen product below the T of the rubber stopper may require special attention because below the T the rubber becomes more plastic like and loses its elastic (sealing) characteristics. Thus, they risk not maintaining container closure integrity (CCI). Given that the rubber regains its elastic properties and reseals after rewarming to ambient temperature, leaks during frozen temperature storage and transportation are transient and the CCI methods used at room temperature conditions are unable to confirm CCI in the frozen state. Hence, several experimental methods have been developed in recent years in order to evaluate CCI at low temperatures. Finite element (FE) simulations were applied in order to investigate the sealing behaviour of rubber stoppers for the drug product CCS under frozen storage conditions. FE analysis can help in reducing the experimental design space and thus the number of measurements needed, as they can be used as an add-on to experimental testing. Several scenarios have been simulated including the effect of thermal history, rubber type, storage time, worst-case CCS geometric tolerances, and capping pressure. The results of these calculations have been validated with experimental data derived from laboratory experiments (CCI at low temperatures), and a concept for tightness has been developed. It has been concluded that FE simulations have the potential to become a powerful predictive tool toward a better understanding of the influence of cold storage on the rubber sealing properties (and hence on CCI) when dealing with frozen drug products. The growing interest in the assessment of suitable vial/stopper combinations for storage and shipment of frozen drug products has led to the development of a number of experimental methods to evaluate container closure integrity at low temperatures. The application of finite element simulations could aid in the investigation of the sealing behaviour of rubber stoppers for drug product container closure systems under frozen storage conditions by simplifying the experimental design space and the number of experimental measurements needed. In this work several scenarios have been simulated including the effect of thermal history, rubber type, storage time, worst-case container closure system geometric tolerances, and capping pressure. The results have been further validated with experimental data derived from laboratory experiments and a concept for tightness was developed. In conclusion, finite element simulations have shown the potential to become a powerful predictive tool toward a better understanding of the influence of cold storage on the rubber sealing properties (and hence on container closure integrity) when dealing with frozen drug products.

摘要

近年来,人们对评估适用于冷冻药品储存和运输的瓶/塞组合越来越感兴趣。考虑到容器封闭系统(CCS)中使用的丁基橡胶塞的玻璃化转变温度(T)在-55°C至-65°C之间,冷冻产品的储存或运输温度低于橡胶塞的T时可能需要特别关注,因为在T以下橡胶会变得更像塑性材料并失去其弹性(密封)特性。因此,它们有无法保持容器封闭完整性(CCI)的风险。鉴于橡胶在重新升温至环境温度后会恢复其弹性性能并重新密封,冷冻温度储存和运输期间的泄漏是短暂的,并且在室温条件下使用的CCI方法无法确认冷冻状态下的CCI。因此,近年来已经开发了几种实验方法来评估低温下的CCI。应用有限元(FE)模拟来研究冷冻储存条件下药品CCS橡胶塞的密封行为。FE分析有助于减少实验设计空间,从而减少所需的测量次数,因为它们可以用作实验测试的补充。已经模拟了几种情况,包括热历史、橡胶类型、储存时间、最坏情况的CCS几何公差和封盖压力的影响。这些计算结果已通过实验室实验得出的实验数据(低温下的CCI)进行了验证,并形成了密封性的概念。得出的结论是,在处理冷冻药品时,FE模拟有潜力成为一种强大的预测工具,有助于更好地理解冷藏对橡胶密封性能(进而对CCI)的影响。对评估适用于冷冻药品储存和运输的瓶/塞组合的兴趣日益浓厚,促使人们开发了许多实验方法来评估低温下的容器封闭完整性。有限元模拟的应用可以通过简化实验设计空间和所需的实验测量次数,帮助研究冷冻储存条件下药品容器封闭系统橡胶塞的密封行为。在这项工作中,已经模拟了几种情况,包括热历史、橡胶类型、储存时间、最坏情况的容器封闭系统几何公差和封盖压力的影响。结果已通过实验室实验得出的实验数据进一步验证,并形成了密封性的概念。总之,有限元模拟已显示出有潜力成为一种强大的预测工具,有助于更好地理解冷藏对橡胶密封性能(进而对容器封闭完整性)的影响,当处理冷冻药品时。

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