Wei Wu*, Ridade Sayin, Khrystyna Shvedova, Stephen C. Born, Christopher J. Testa, Shalabh S. Yeole, Alexander S. Censullo, Anup Kumar Srivastava, Anjana Ramnath, Chuntian Hu, Bayan Takizawa, Thomas F. O’Connor, Xiaochuan Benjamin Yang, Sukumar Ramanujam and Salvatore Mascia*,
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引用次数: 0
Abstract
As pharmaceutical manufacturers are looking for ways to shift toward continuous manufacturing, one of the biggest challenges has been the continuous separation and purification of active pharmaceutical ingredients (APIs). To address these challenges, a continuous rotary filter was developed, and its design space was investigated using a commercially available API. The filtration unit consists of a rotatable plate that receives a continuous flow of feed material that is distributed along the radius of the plate, forming a thin cake. The cake is continuously filtered, washed, and removed from the plate. An additional plate wash continually cleans the filter medium, enabling long-term operations. A slurry containing the selected API and two main impurities was processed by a continuous rotary filter. The performance of the unit was assessed both as a standalone entity and as a component of an integrated continuous manufacturing line. We observed that longer cake residence times (3.25 vs 2.5 min) on the filter plate and higher wash rates (among 12, 9, 6, and 3 mL/min) improved purification performance, though the latter plateaued above certain levels. Elevated crystallization temperatures (up to 70 °C) also increased the purification efficiency while not significantly impacting the yield. Finally, feed material with lower impurity concentrations resulted in a reduction in residual impurity ratio (down to 0.001). Yield studies demonstrated that the final crystallization temperature and cake wash rate impact the overall filtration yield (98.05% yield was obtained). In both settings, the rotary filter isolated and purified the cake to the required quality specifications, proving its effectiveness and robustness during continuous operations.
期刊介绍:
The journal Organic Process Research & Development serves as a communication tool between industrial chemists and chemists working in universities and research institutes. As such, it reports original work from the broad field of industrial process chemistry but also presents academic results that are relevant, or potentially relevant, to industrial applications. Process chemistry is the science that enables the safe, environmentally benign and ultimately economical manufacturing of organic compounds that are required in larger amounts to help address the needs of society. Consequently, the Journal encompasses every aspect of organic chemistry, including all aspects of catalysis, synthetic methodology development and synthetic strategy exploration, but also includes aspects from analytical and solid-state chemistry and chemical engineering, such as work-up tools,process safety, or flow-chemistry. The goal of development and optimization of chemical reactions and processes is their transfer to a larger scale; original work describing such studies and the actual implementation on scale is highly relevant to the journal. However, studies on new developments from either industry, research institutes or academia that have not yet been demonstrated on scale, but where an industrial utility can be expected and where the study has addressed important prerequisites for a scale-up and has given confidence into the reliability and practicality of the chemistry, also serve the mission of OPR&D as a communication tool between the different contributors to the field.