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片剂压缩过程的超声实时模内监测——概念验证研究。

Ultrasonic real-time in-die monitoring of the tablet compaction process-a proof of concept study.

机构信息

Department of Mechanical and Aeronautical Engineering, Photo-Acoustics Research Laboratory, Center for Advanced Materials Processing, Clarkson University, Potsdam, NY 13699-5725, USA.

出版信息

Int J Pharm. 2013 Feb 14;442(1-2):20-6. doi: 10.1016/j.ijpharm.2012.09.014. Epub 2012 Sep 16.

Abstract

The mechanical properties of a drug tablet can affect its performance (e.g., dissolution profile and its physical robustness. An ultrasonic system for real-time in-die tablet mechanical property monitoring during compaction has been demonstrated. The reported set-up is a proof of concept compaction monitoring system which includes an ultrasonic transducer mounted inside the upper punch of the compaction apparatus. This upper punch is utilized to acquire ultrasonic pressure wave phase velocity waveforms and extract the time-of-flight of pressure waves travelling within the compact at a number of compaction force levels during compaction. The reflection coefficients for the waves reflecting from punch tip-powder bed interface are extracted from the acquired waveforms. The reflection coefficient decreases with an increase in compaction force, indicating solidification. The data acquisition methods give an average apparent Young's moduli in the range of 8-20 GPa extracted during the compaction and release/decompression phases in real-time. A monitoring system employing such methods is capable of determining material properties and the integrity of the tablet during compaction. As compared to the millisecond time-scale dwell time of a typical commercial compaction press, the micro-second pulse duration and ToF of an acoustic pulse are sufficiently fast for real-time monitoring.

摘要

药物片剂的机械性能会影响其性能(例如,溶解特性和物理强度。已经证明了一种用于实时压片内片剂机械性能监测的超声系统。所报道的设置是一个概念验证压缩监测系统,包括安装在压缩设备的上冲头内的超声换能器。在上冲头的利用下,在压缩过程中的多个压缩力水平下,获取在压缩过程中在压片内传播的超声压力波相速度波形,并提取压力波的飞行时间。从获得的波形中提取出从冲头尖端-粉末床界面反射的波的反射系数。随着压缩力的增加,反射系数减小,表明凝固。数据采集方法实时提供在压缩和释放/减压阶段提取的平均表观杨氏模量在 8-20 GPa 范围内。采用这种方法的监测系统能够在压缩过程中确定材料特性和片剂的完整性。与典型商业压缩压力机的毫秒级停留时间相比,声脉冲的微秒脉冲持续时间和飞行时间对于实时监测足够快。

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