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Model-Based Scale-up and Design Space Determination for a Batch Reactive Distillation with a Dean-Stark Trap

机译:迪安-斯达克榻分水器间歇反应精馏的基于模型的规模放大和设计空间确定

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Batch reactive distillations are commonly used unit operations in the pharmaceutical industry to drive chemical equilibrium reactions to completion. Their scale-up and transfer to manufacturing is not straightforward due to the interplay of scale dependent and scale independent phenomena. The increased process knowledge as required by the Quality by Design (QbD) approach calls for a first-principles-based design, scale-up and transfer of such processes. This paper presents a systematic approach consisting of a combination of first principles modeling and experimentation for the scale-up from bench to pilot-plant scale. The model is then used to estimate the process performance at different scales and study the sensitivity of the process to operational parameters such as heat transfer driving force, solvent recycle, removed fraction of volatiles. This approach is capable of robustly predicting process outcomes at lab and pilot-plant scale and delivers a better understanding of the underlying physics governing the process. The model is used further to map the design space (a region in the space of operating parameters where given quality and/or performance constraints are met) taking into account both model parameter uncertainty and routine operational variability.
机译:间歇反应蒸馏是制药工业中通常用于驱动化学平衡反应完成的单元操作。由于规模相关和规模无关的现象相互影响,它们的放大和转移到制造过程并不容易。设计质量(QbD)方法要求增加的过程知识,要求基于第一原理的设计,此类过程的扩展和转移。本文提出了一种系统的方法,该方法由第一原理建模和实验相结合,用于从试验台规模扩大到中试规模。然后,该模型用于估计不同规模的过程性能,并研究过程对操作参数(如传热驱动力,溶剂循环利用,挥发物去除率)的敏感性。这种方法能够在实验室和中试工厂规模上稳健地预测过程结果,并更好地理解控制过程的基本物理原理。考虑到模型参数不确定性和常规操作可变性,该模型还用于映射设计空间(运行参数空间中满足给定质量和/或性能约束的区域)。

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