Related Experiment Video
Updated: May 21, 2026

Frugal Imaging Technique of Capillary Flow Through Three-Dimensional Polymeric Printing Powders
Published on: October 4, 2022
Powder strength distributions for understanding de-agglomeration of lactose powders
Shyamal C Das1, Srinivas Ravindra Babu Behara, Jurgen B Bulitta
1Drug Delivery, Disposition and Dynamics Monash Institute of Pharmaceutical Sciences, Monash University (Parkville campus), 381 Royal Parade, Parkville, Victoria, 3052, Australia. shyamal.das@monash.edu
Purpose:
The purpose was to calculate distributions of powder strength of a cohesive bed to explain the de-agglomeration of lactose.
Methods:
De-agglomeration profiles of Lactohale 300(®) (L300) and micronized lactose (ML) were constructed by particle sizing aerosolised plumes dispersed at air flow rates of 30-180 l/min. The work of cohesion distribution was determined by inverse gas chromatography. The primary particle size and tapped density distributions were determined. Powder strength distributions were calculated by Monte Carlo simulations from distributions of particle size, work of cohesion and tapped density measurements.
Results:
The powder strength distribution of L300 was broader than that of ML. Up to 85th percentile, powder strength of L300 was lower than ML which was consistent with the better de-agglomeration of L300 at low flow rates. However, ~15% of L300 particles had higher powder strength than ML which likely to cause lower de-agglomeration for L300 at high air flow rates.
Conclusion:
Cohesive lactose powders formed matrices of non-homogenous powder strength. De-agglomeration of cohesive powders has been shown to be related to powder strength. This study provided new insights into powder de-agglomeration by a new approach for calculating powder strength distributions to better understand complex de-agglomeration behaviour.
Related Concept Videos
Drug Dissolution: Requirements and Profile Comparison
Pharmaceutical Alternatives: Polymorphic Form-Related and Particle Size-Related Therapeutic Nonequivalence
Colloidal precipitates
Molecular Weight of Step-Growth Polymers
As the step-growth polymerization involves step-wise condensation of monomers, the molecular weight also builds up eventually. Consequently, high molecular weight polymers are obtained at the late stages of the polymerization, where 99% of monomers have been consumed.
The extent of the...
