A predictive model based on key particle properties for segregation of free-flowing powder blends measured using
Anna Owasit1, Siddharth Tripathi1, Rajesh Davé1
1Distinguished Professor of Chemical and Materials Engineering, New Jersey Center for Engineered Particulates, New Jersey Institute of Technology, Newark, NJ 07102, USA.
Abstract:
Segregation behavior of binary blends of free-flowing powders was systematically investigated to develop a quantitative model for predicting segregation tendencies as a function of key particle properties. Binary blends, eight training and two testing, were prepared from seven materials, spanning a range of ratios of particle size, bulk density, and aspect ratios. A novel tape test sample preparation technique, developed to enhance the accuracy of blend uniformity measurements, reduce material usage, and minimize sampling errors, helps validate the use of a Near-Infrared (NIR) probe-based SPECTester to assess segregation intensity (SI) of those binary blends. Cumulative segregation area (CSA), defined as the integrated absolute deviation area between the cumulative concentration profile and the no-segregation baseline, was introduced as a novel measure of segregation that better captured the segregation tendency across a range of variables. A multi-variate power-law model, capturing the combined influence of these properties on segregation behavior, was developed. For the segregation intensity (SI)-based model, predictions closely matched experimental measurements for the training dataset (R2 ≈ 0.98) and maintained good accuracy for unseen test blends (R2 ≈ 0.85). When evaluated using CSA, the model exhibited strong generalization, achieving R2 = 0.92 for the training dataset and R2 = 0.96 for the test blends. Heatmap visualizations overlaid with experimental data confirmed that higher D50 × bulk density ratios increased segregation intensity, whereas larger ratios of aspect ratio mitigated segregation. Overall, a robust quantitative framework was established for understanding and predicting segregation in free-flowing powder systems, potentially enabling improved blend uniformity.
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