...
首页> 外文期刊>International Journal of Pharmaceutics >Radial die-wall pressure as a reliable tool for studying the effect of powder water activity on high speed tableting.
【24h】

Radial die-wall pressure as a reliable tool for studying the effect of powder water activity on high speed tableting.

机译:径向模具壁压力是研究粉末水活度对高速压片效果的可靠工具。

获取原文
获取原文并翻译 | 示例
           

摘要

The effect of moisture as a function of water activity (Aw) on the compaction process is important to understand particle/water interaction and deformation. Studying powder/moisture interaction under pressure with radial die-wall pressure (RDWP) tool was never done. The aim of our study was to use this tool to study this interaction at high compression pressure and speed. Moreover, the effect of changing ejection cam angle (EA) of the machine on ejection force (EF) was investigated. Also, a new tool for prediction of tablet sticking was proposed. Materials with different deformation behaviors stored at low and high moisture conditions were used. Compaction simulation guided by modeling was applied. High Aw resulted in a low residual die-wall pressure (RDP) for all materials, and a high maximum die-wall pressure (MDP) for plastic materials, p < 0.05. This was due to the lubricating and plasticizing effects of water, respectively. However, microcrystalline cellulose showed capping at high Aw and compaction pressure. By increasing compression pressure at high Aw for all materials, effective fall time (EFT) was increased, p < 0.05, showing tendency for sticking. Increasing EA caused an increase of friction and EF for powders, p < 0.05. RDWP was a useful tool to understand particle/moisture interaction under pressure.
机译:水分作为水活度(Aw)的函数对压实过程的影响对于理解颗粒/水的相互作用和变形非常重要。从未使用径向模具壁压力(RDWP)工具研究压力下的粉末/水分相互作用。我们研究的目的是使用该工具来研究高压缩压力和速度下的这种相互作用。此外,研究了改变机器的弹出凸轮角(EA)对弹出力(EF)的影响。另外,提出了一种用于预测片剂粘附的新工具。使用在低湿度和高湿度条件下存储的具有不同变形行为的材料。应用了以建模为指导的压实模拟。高Aw导致所有材料的残余模具壁压力(RDP)低,而塑料材料的最大模具壁压力(MDP)高,p <0.05。这分别是由于水的润滑和增塑作用。然而,微晶纤维素在高Aw和压实压力下显示出封端。通过提高所有材料在高Aw下的压缩压力,有效下降时间(EFT)会增加,p <0.05,显示出粘附的趋势。 EA的增加导致粉末的摩擦力和EF增加,p <0.05。 RDWP是了解压力下颗粒/水分相互作用的有用工具。

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