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An investigation into the usefulness of different empirical modeling techniques for better control of spray-on fluidized bed melt granulation

机译:研究各种经验建模技术对更好地控制喷射流化床熔体造粒的有用性

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摘要

Melt granulation in fluid bed processors is an emerging technique, but literature data regarding the modeling of this granulation method are lacking. In the present study different techniques (response surface analysis, multilayer perceptron neural network, and partial least squares method) were applied for modeling of spray-on fluidized bed melt granulation. Experiments were organized in line with central composite design. The effect of binder content and spray air pressure on granule properties was evaluated. The results obtained indicate that binder content can be identified as a critical factor controlling the granule size and size distribution. It was found that agglomeration mechanism involved, i.e., granule shape, can be greatly influenced by binder properties. The spray air pressure was identified as critical process parameter affecting granule flowability. The results presented indicate that application of in silico tools enables enhanced understanding and better control of novel pharmaceutical processes, such as melt granulation in fluidized bed. The artificial neural networks and partial least squares method were found to be superior to response surface methodology in prediction of granule properties. According to the results obtained, application of more advanced empirical modeling techniques complementary to design of experiments can be a suitable approach in defining the design space and optimization of spray-on fluidized bed melt granulation. (C) 2015 Elsevier B.V. All rights reserved.
机译:流化床处理器中的熔体造粒是一种新兴技术,但是缺乏有关这种造粒方法建模的文献数据。在本研究中,将不同的技术(响应表面分析,多层感知器神经网络和偏最小二乘方法)应用于喷雾流化床熔体造粒的建模。根据中央综合设计组织了实验。评估了粘合剂含量和喷雾气压对颗粒性质的影响。获得的结果表明,粘合剂含量可以被确定为控制颗粒尺寸和尺寸分布的关键因素。已经发现,所涉及的附聚机制,即颗粒形状,可以受到粘合剂性能的极大影响。喷雾气压被认为是影响颗粒流动性的关键工艺参数。给出的结果表明,使用计算机模拟工具可以增强对新型制药工艺(例如流化床中熔融制粒)的理解和更好的控制。发现人工神经网络和偏最小二乘方法在预测颗粒性质方面优于响应面方法。根据获得的结果,应用更先进的经验建模技术补充实验设计可能是确定设计空间和优化喷涂流化床熔体造粒的合适方法。 (C)2015 Elsevier B.V.保留所有权利。

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