Schneid Stefan, Gieseler Henning
Division of Pharmaceutics, Freeze-Drying Focus Group, University of Erlangen, Cauerstrasse 4, 91058, Erlangen, Germany.
AAPS PharmSciTech. 2008;9(3):729-39. doi: 10.1208/s12249-008-9099-8. Epub 2008 Jun 17.
The purpose of this research was to evaluate a new wireless and battery-free sensor technology for invasive product temperature measurement during freeze-drying. Product temperature is the most critical process parameter in a freeze-drying process, in particular during primary drying. The product temperature over time profile and a precise detection of the endpoint of ice sublimation is crucial for comparison of freeze-drying cycles. Traditionally, thermocouples are used in laboratory scale units whereas resistance thermal detectors are applied in production scale freeze-dryers to evaluate temperature profiles. However, both techniques show demerits with regard to temperature comparability and biased measurements relative to vials without sensors. A new generation of wireless temperature sensors (Temperature Remote Interrogation System, TEMPRIS) were used in this study to investigate for the first time their value when applied to freeze-drying processes. Measurement accuracy, capability of accurate endpoint detection and effect of positioning were delineated by using product runs with sucrose, mannitol and trehalose. Data were compared to measurements with 36-gauge thermocouples as well as to non-invasive temperature measurement from Manometric Temperature Measurements. The results show that the TEMPRIS temperature profiles were in excellent agreement to thermocouple data when sensors were placed center bottom in a vial. In addition, TEMPRIS sensors revealed more reliable temperature profiles and endpoint indications relative to thermocouple data when vials in edge position were monitored. The results of this study suggest that TEMPRIS may become a valuable tool for cycle development, scale-up and routine manufacturing in the future.
本研究的目的是评估一种新型无线且无需电池的传感器技术,用于冻干过程中侵入式产品温度测量。产品温度是冻干过程中最关键的工艺参数,尤其是在一次干燥期间。产品温度随时间的变化曲线以及冰升华终点的精确检测对于比较冻干周期至关重要。传统上,热电偶用于实验室规模的设备,而电阻式热探测器则应用于生产规模的冻干机以评估温度曲线。然而,这两种技术在温度可比性以及相对于无传感器小瓶的测量偏差方面都存在缺点。本研究使用了新一代无线温度传感器(温度远程询问系统,TEMPRIS),首次研究其应用于冻干过程时的价值。通过使用含有蔗糖、甘露醇和海藻糖的产品运行来描述测量精度、精确终点检测能力和定位效果。将数据与36号热电偶的测量结果以及压力温度测量的非侵入式温度测量结果进行比较。结果表明,当传感器放置在小瓶底部中心时,TEMPRIS温度曲线与热电偶数据高度吻合。此外,当监测边缘位置的小瓶时,相对于热电偶数据,TEMPRIS传感器显示出更可靠的温度曲线和终点指示。本研究结果表明,TEMPRIS未来可能成为循环开发、放大和常规生产的有价值工具。