Analyzing Homogeneity of Highly Viscous Polymer Suspensions in Change Can Mixers.

Polymers (Basel)

Department of Civil and Mechanical Engineering, Technical University of Denmark, 2800 Kongens Lyngby, Denmark.

Published: September 2024

AI Article Synopsis

  • Mixing highly viscous non-Newtonian suspensions is vital in various industries, prompting this CFD study to analyze non-isothermal mixing in change can mixers.
  • The research aimed to find key parameters affecting mixing efficiency, focusing on the Kramer mixing index (MKramer) and the Ica Manas-Zloczower mixing index (λMZ¯).
  • Key findings revealed z-axis rotation significantly influences mixing performance, while the number of arms has a complex impact; importantly, temperature factors were found to have minimal effect, emphasizing the role of operational parameters in mixing processes.

Article Abstract

The mixing of highly viscous non-Newtonian suspensions is a critical process in various industrial applications. This computational fluid dynamics (CFD) study presents an in-depth analysis of non-isothermal mixing performance in change can mixers. The aim of the study was to identify parameters that significantly influence both distributive and dispersive mixing in these mixers, which are essential for optimizing industrial mixing processes. The study employed a numerical design of experiments (DOE) approach to identify the parameters that most significantly influence both distributive and dispersive mixing, as measured by the Kramer mixing index (MKramer) and the Ica Manas-Zloczower mixing index λMZ¯. The investigated parameters included mixing time, number of arms, arm size ratio, revolutions per minute (RPM), z-axis rotation, z-axis movement, and initial and mixing temperatures. The methodology involved employing the bootstrap forest algorithm for predicting the mixing indices, achieving an R2 of 0.949 for MKramer and an R2 of 0.836 for λMZ¯. The results indicate that the z-axis rotation has the greatest impact on both distributive and dispersive mixing. An increased number of arms negatively impacted λMZ, but had a small positive effect on MKramer. Surprisingly, in this study, neither the initial temperature of the material nor the mixing temperature significantly impacted the mixing performance. These findings highlight the relative importance of operational parameters over traditional temperature factors and provide a new perspective on mixing science.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11436012PMC
http://dx.doi.org/10.3390/polym16182675DOI Listing

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