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首页> 外文期刊>Chemical Engineering and Processing >Pharmaceutical crystallisation processes from batch to continuous operation using MSMPR stages: Modelling, design, and control
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Pharmaceutical crystallisation processes from batch to continuous operation using MSMPR stages: Modelling, design, and control

机译:使用MSMPR阶段从批次到连续操作的药物结晶过程:建模,设计和控制

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摘要

In pharmaceuticals manufacturing, the conversion of conventional batch crystallisations to continuous mode has the potential for intensified, compact operation and more consistent production via quality-bydesign. A pragmatic conversion approach is to utilise existing stirred tank batch crystallisers as continuous mixed-suspension mixed-product removal (MSMPR) stages. In this study, a rigorous and general mathematical model is developed for a pharmaceutical crystallisation process under continuous MSMPR operation. In the proposed changeover from batch to continuous operation, concentration control (C-control), which has been well accepted in batch crystallisation operation, is further extended to facilitate the convenient design of the steady-state operating point of a continuous MSMPR crystalliser; an objective is to ensure that the start-up procedures and on-line control conditions fall within the design-space of the original batch operation. Both single-stage and cascaded two-stage MSMPR crystallisers were investigated and compared to the conventional batch operation. It was observed that despite the production of a smaller number-based mean crystal size, the proposed continuous MSMPR operation achieved higher production capacity with shorter mean residence time and comparable product yield to the batch operation. Lastly, the robustness of C-control strategy against uncertainties in crystallisation kinetics was also demonstrated for the proposed continuous MSMPR operation. (C) 2015 Elsevier B.V. All rights reserved.
机译:在药品制造中,通过按质量设计,常规批结晶向连续模式的转化具有增强,紧凑操作和更一致生产的潜力。一种实用的转化方法是利用现有的搅拌釜分批结晶器作为连续的混合悬浮液混合产物去除(MSMPR)阶段。在这项研究中,针对连续MSMPR操作下的药物结晶过程,建立了严格而通用的数学模型。在提议的从分批运行到连续运行的转换中,已经扩展了在分批结晶操作中广为接受的浓度控制(C-control),以便于方便地设计连续MSMPR结晶器的稳态工作点;目的是确保启动程序和在线控制条件不超出原始批生产操作的设计空间。研究了单级和级联的两级MSMPR结晶器,并将其与常规分批操作进行了比较。观察到,尽管产生了较小的基于数量的平均晶体尺寸,但所提出的连续MSMPR操作获得了更高的生产能力,同时平均停留时间更短,并且产物的产率可与批量操作相当。最后,对于拟议的连续MSMPR操作,还证明了C控制策略对结晶动力学不确定性的鲁棒性。 (C)2015 Elsevier B.V.保留所有权利。

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