| Literature DB >> 28416416 |
Lap Yin Leung1, Chen Mao2, Ishan Srivastava1, Ping Du1, Chia-Yi Yang1.
Abstract
The purpose of this study was to demonstrate that the flow function (FFc) of pharmaceutical powders, as measured by rotational shear cell, is predominantly governed by cohesion but not friction coefficients. Driven by an earlier report showing an inverse correlation between FFc and the cohesion divided by the corresponding pre-consolidation stress (Wang et al. 2016. Powder Tech. 294:105-112), we performed analysis on a large data set containing 1130 measurements from a ring shear tester and identified a near-perfect inverse correlation between the FFc and cohesion. Conversely, no correlation was found between FFc and friction angles. We also conducted theoretical analysis and estimated such correlations based on Mohr-Coulomb failure model. We discovered that the correlation between FFc and cohesion can sustain as long as the angle of internal friction at incipient flow is not significantly larger than the angle of internal friction at steady-state flow, a condition covering almost all pharmaceutical powders. The outcome of this study bears significance in pharmaceutical development. Because the cohesion value is strongly influenced by the interparticle cohesive forces, this study effectively shows that it is more efficient to improve the pharmaceutical powder flow by lowering the interparticle cohesive forces than by lowering the interparticle frictions.Entities:
Keywords: cohesion; flow function; friction; mechanical properties; nanoparticles; powder technology; shear cell; silica; solid dosage form
Mesh:
Substances:
Year: 2017 PMID: 28416416 DOI: 10.1016/j.xphs.2017.04.012
Source DB: PubMed Journal: J Pharm Sci ISSN: 0022-3549 Impact factor: 3.534