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Incorporating Solvent-Dependent Kinetics To Design a Multistage, Continuous, Combined Cooling/Antisolvent Crystallization Process

机译:掺入溶剂依赖性动力学来设计多级,连续,组合的冷却/防溶剂结晶过程

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摘要

Combined cooling and antisolvent crystallization enables crystallization of many pharmaceutical products, but its process design typically neglects solvent composition influences on crystallization kinetics. This paper evaluates the influence of solvent-dependent nucleation and growth kinetics on the design of optimal, multistage mixed-suspension, mixed-product removal (MSMPR) crystallization cascades. The ability to independently select temperature and solvent compositions in each stage of the cascade serves to greatly expand the attainable region for a two-stage cascade, with diminishing returns for additional stages. Failure to include solvent-dependent kinetics can result in simulating incorrect attainable regions, active pharmaceutical ingredient (API) yields, and crystal size distributions. This work also demonstrates that commonly employed crystallization process design heuristics, such as equal antisolvent addition and decreasing temperature in successive stages, can result in suboptimal process design if kinetics are strongly solvent dependent.
机译:结合冷却和抗溶剂结晶使得能够结晶许多药物产品,但其工艺设计通常忽略溶剂组合物对结晶动力学的影响。本文评估溶剂依赖性成核和生长动力学对最佳,多级混合悬浮,混合产物去除(MSMPR)结晶级联设计的影响。在级联的每个阶段中独立地选择温度和溶剂组合物的能力用于大大扩展到两级级联的可达可达到的区域,其额外阶段的回报递减。不包括依赖依赖性的动力学可能导致模拟可易可获得的区域,活性药物成分(API)产率和晶体尺寸分布。这项工作还表明,通常采用的结晶过程设计启发式,例如在连续阶段的等于反溶解和降低温度,如果动力学依赖于动力学,则可能导致次优工艺设计。

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