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首页> 外文期刊>Crystal growth & design >Nucleation and Growth Kinetics for Combined Cooling and Antisolvent Crystallization in a Mixed-Suspension, Mixed-Product Removal System: Estimating Solvent Dependency
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Nucleation and Growth Kinetics for Combined Cooling and Antisolvent Crystallization in a Mixed-Suspension, Mixed-Product Removal System: Estimating Solvent Dependency

机译:用于组合冷却和抗溶剂结晶的成核和生长动力学在混合悬浮液中,混合产物去除系统:估算溶剂依赖性

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摘要

Combined cooling and antisolvent crystallization is a critical unit operation in pharmaceutical manufacturing, especially for heat-sensitive or poorly soluble active pharmaceutical ingredients. The model-based design of these systems relies on the accuracy of the underlying growth and nucleation kinetic parameters. Unlike temperature where these kinetic parameters are well-known to follow an Arrhenius relation, their dependency on solvent composition still remains unclear, especially in continuous mixed-suspension, mixed-product removal (MSMPR) systems. In this paper, we use population balance modeling coupled with nonlinear regression to estimate growth and nucleation parameters as a function of both temperature and solvent composition. As solvent composition increases from 44 vol % to 66 vol % solvent, both growth and nucleation rates were observed to decrease monotonically with their values reduced by almost one-third. It was also shown that, if the solvent dependency is ignored, the yield can be overpredicted or underpredicted by as much as 15%.
机译:结合冷却和抗溶剂结晶是药物制造中的关键单位操作,特别是对于热敏或可溶性活性药物成分不良。基于模型的这些系统的设计依赖于潜在的生长和成核动力学参数的准确性。与这些动力学参数众所周知的温度不同,它们对溶剂组合物的依赖性仍然不清楚,特别是在连续混合悬浮液中,混合产物去除(MSMPR)系统。在本文中,我们使用群体平衡建模与非线性回归相结合,以估计生长和成核参数,作为温度和溶剂组合物的函数。由于溶剂组合物从44体积%增加到66体积%的溶剂,因此观察到生长和成核率,以单调减少其值,其值降低了几乎三分之一。还表明,如果忽略溶剂依赖性,则产量可能会覆盖或低于15%。

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  • 来源
    《Crystal growth & design》 |2018年第3期|共11页
  • 作者单位

    Novartis-MIT Center for Continuous Manufacturing and Department of Chemical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge Massachusetts 02139 United States;

    Novartis-MIT Center for Continuous Manufacturing and Department of Chemical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge Massachusetts 02139 United States;

    Novartis-MIT Center for Continuous Manufacturing and Department of Chemical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge Massachusetts 02139 United States;

    Novartis-MIT Center for Continuous Manufacturing and Department of Chemical Engineering Massachusetts Institute of Technology 77 Massachusetts Avenue Cambridge Massachusetts 02139 United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 晶体学;
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