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在湍流条件下美国药典装置2中的剪切力分布与变化

Shear distribution and variability in the USP Apparatus 2 under turbulent conditions.

作者信息

Kukura J, Baxter J L, Muzzio F J

机构信息

Department of Chemical & Biochemical Engineering, Rutgers University, 98 Brett Road, Piscataway, NJ 08854, USA.

出版信息

Int J Pharm. 2004 Jul 26;279(1-2):9-17. doi: 10.1016/j.ijpharm.2004.03.033.

Abstract

Computational analysis is used to examine the hydrodynamic environment within the USP Apparatus II at common operating conditions. Experimental validation of the computational model shows that the simulations of fluid motion match the dispersion of dye observed in experiments. The computations are then used to obtain data that cannot be easily measured with experiments, specifically the distribution of shear forces within the media and along the wall. Results show that the shear environment is highly non-uniform. Increasing the paddle speed from 50 to 100 rpm does not improve shear homogeneity within the apparatus. Experiments show that this uneven distribution of hydrodynamic forces is a direct cause of dissolution testing variability. This variability is large enough to cause for type II dissolution test failures, i.e., failures are a result of a vulnerability of the testing method rather than a problem with a dosage form. Future development of new dissolution tests should include evaluations of the hydrodynamic environments to eliminate this potential source of failure that is unrelated to product quality.

摘要

计算分析用于研究美国药典装置II在常见操作条件下的流体动力学环境。计算模型的实验验证表明,流体运动模拟与实验中观察到的染料扩散相匹配。然后利用这些计算来获取实验中不易测量的数据,特别是介质内部和沿壁面的剪切力分布。结果表明,剪切环境高度不均匀。将桨叶速度从50转/分钟提高到100转/分钟并不能改善装置内的剪切均匀性。实验表明,这种流体动力的不均匀分布是溶出度测试变异性的直接原因。这种变异性足够大,足以导致II型溶出度测试失败,即失败是测试方法的脆弱性导致的,而不是剂型问题。新溶出度测试的未来发展应包括对流体动力学环境的评估,以消除这种与产品质量无关的潜在失败源。

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