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Kinetic Modeling of Dissolution and Crystallization of Slurries with Attenuated Total Reflectance UV-Visible Absorbance and Near-Infrared Reflectance Measurements

机译:具有衰减的全反射率,紫外可见吸收率和近红外反射率测量的浆料溶解和结晶的动力学模型

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摘要

Slurries are often used in chemical and pharmaceutical manufacturing processes but present challenging online measurement and monitoring problems. In this paper, a novel multivariate kinetic modeling application is described that provides calibration-free estimates of time-resolved profiles of the solid and dissolved fractions of a substance in a model slurry system. The kinetic model of this system achieved data fusion of time-resolved spectroscopic measurements from two different kinds of fiber-optic probes. Attenuated total reflectance UV-vis (ATR UV-vis) and diffuse reflectance near-infrared (NIR) spectra were measured simultaneously in a small-scale semibatch reactor. A simplified comprehensive kinetic model was then fitted to the time-resolved spectroscopic data to determine the kinetics of crystallization and the kinetics of dissolution for online monitoring and quality control purposes. The parameters estimated in the model included dissolution and crystal growth rate constants, as well as the dissolution rate order. The model accurately estimated the degree of supersaturation as a function of time during conditions when crystallization took place and accurately estimated the degree of undersaturation during conditions when dissolution took place.
机译:浆液通常用于化学和制药生产过程,但存在挑战性的在线测量和监控问题。在本文中,描述了一种新颖的多元动力学建模应用程序,该应用程序提供了模型浆液系统中固体的固体成分和溶解部分的时间分辨曲线的无标定估计。该系统的动力学模型实现了来自两种不同类型的光纤探头的时间分辨光谱测量数据融合。在小型半间歇反应器中同时测量衰减的全反射紫外可见(ATR紫外可见)和漫反射近红外(NIR)光谱。然后将简化的综合动力学模型拟合到时间分辨光谱数据,以确定结晶动力学和溶出动力学,以进行在线监测和质量控制。在模型中估计的参数包括溶出度和晶体生长速率常数,以及溶出速率顺序。该模型准确地估计了发生结晶的条件下过饱和度随时间的变化,并准确地估计了发生溶解的条件下过饱和度。

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