首页> 外文期刊>Computers & Chemical Engineering >CFD-DEM-PBM coupled model development and validation of a 3D top-spray fluidized bed wet granulation process
【24h】

CFD-DEM-PBM coupled model development and validation of a 3D top-spray fluidized bed wet granulation process

机译:CFD-DEM-PBM耦合模型开发与验证3D顶喷流化床湿造粒工艺

获取原文
获取原文并翻译 | 示例
           

摘要

In pharmaceutical manufacturing, fluidized bed granulation is one of the common processing options available to achieve better flowability of powders through size enlargement of primary particles. In fact over the last 50 years, various fluidized bed operations including freezing, drying, impregnation, coating, etc. have become a common place in the chemical processing industry due to the high level of contacts between fluids and solids attainable in a fluid bed system. These complex interactions between the fluid and particles also mean that simulating fluidized beds are still a challenging endeavor. Generally, Computational Fluid Dynamics (CFD) packages are employed to model the pressure drops in fluids; however, the presence of high concentration of solids and the complexity of granulation behavior require more advanced particle models than are available with CFD software. As a result, coupled frameworks that utilize the strength of particulate simulations such as Discrete Element Method (DEM) and bulk granulation modeling such as Population Balance Model (PBM) in conjunction with CFD information are the next steps to developing practical fluid bed granulation models.This paper aims to provide a comprehensive description of the development and validation of a coupled CFD-DEM-PBM framework for a fluidized bed wet granulation operation. A two-way coupled CFDDEM model is developed for a 3-dimensional, lab-scale, top spray fluid bed granulator to study the effects of process parameters such as inlet air flow rate and inlet air temperature on the particle flow dynamics and the residence time in the spray zone. A one-way transfer of data from CFD-DEM to PBM is then applied to relate the effects of particle-fluid interactions to granulation behavior occurring within the fluidized bed system. Mechanistic rate expressions were developed in the PBM to create links between CFD-DEM results and PBM rate kernels which can express the effect of critical process parameters (CPPs) such as air flow rate, inlet air temperature, binder spray rate, etc. to experimentally measured critical quality attributes (CQAs) including granule size distribution and liquid content values. From comparison with experimental results, the framework presented shows good accuracy at capturing the dynamics of the system. The presented framework demonstrates a practical process model development methodology by efficiently coupling multi-phase simulation techniques which can be used for effective process design, development and scale-up purposes. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在药物制造中,流化床造粒是可用于通过大小扩大初级颗粒的粉末的更好流动性的常见加工选择之一。事实上,在过去的50年中,由于流化床系统中可获得的流体和固体之间的高水平接触,各种流化床操作包括冻结,干燥,浸渍,涂层等,包括化学加工行业的常见位置。流体和颗粒之间的这些复杂的相互作用也意味着模拟流化床仍然是一个具有挑战性的努力。通常,计算流体动力学(CFD)封装用于模拟流体中的压降;然而,存在高浓度的固体和造粒行为的复杂性需要更先进的粒子模型,而不是CFD软件。结果,利用诸如离散元素法(DEM)和散装造型模型(如群体平衡模型(PBM)的颗粒模拟强度的耦合框架与CFD信息一起是开发实用流化床造粒模型的下一步。本文旨在提供对流化床湿造粒操作的耦合CFD-DEM-PBM框架的开发和验证的综合描述。开发了一种双向耦合的CFDDEM模型,用于三维,实验室 - 秤,顶部喷雾流体床造粒机,用于研究过程参数,例如入口空气流量和入口空气温度的效果和颗粒流动动力学和停留时间在喷雾区。然后应用来自CFD-DEM至PBM的单向将数据转移到PBM以涉及颗粒流体相互作用对流化床系统内发生的造粒行为的影响。在PBM中开发了机械速率表达,在CFD-DEM结果和PBM速率核之间创建了链接,可以表达临界工艺参数(CPP),例如空气流量,入口空气温度,粘合剂喷射率等。测量临界质量属性(CQAS),包括颗粒尺寸分布和液体含量值。根据实验结果的比较,框架呈现在捕获系统的动态时显示出良好的准确性。本框架通过有效地耦合多相仿真技术来演示实用的过程模型开发方法,该技术可用于有效的过程设计,开发和扩大目的。 (c)2019 Elsevier Ltd.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号