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Packing density of slurry‐packed capillaries at low aspect ratios
Author(s) -
Ehlert Steffen,
Rösler Thomas,
Tallarek Ulrich
Publication year - 2008
Publication title -
journal of separation science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.72
H-Index - 102
eISSN - 1615-9314
pISSN - 1615-9306
DOI - 10.1002/jssc.200800018
Subject(s) - packed bed , slurry , porosity , sphere packing , particle (ecology) , materials science , particle size , polystyrene , aspect ratio (aeronautics) , analytical chemistry (journal) , surface roughness , surface finish , chromatography , chemistry , mineralogy , composite material , polymer , geology , oceanography
The average interparticle voidage or porosity (ε inter ) in cylindrical capillaries is studied in dependence on the column diameter ( d c ) to particle diameter ( d p ) ratio for 5 < d c / d p < 50. Using optimized slurry and packing solvents, high pressure and ultrasonication, 5 μm‐sized porous C18‐silica particles were slurry‐packed into fused‐silica capillaries having ids from 30 to 250 μm. Packing densities are assessed by a polystyrene standard which is size‐excluded from the intraparticle pore space of the packings. For d c / d p > 35 densely packed beds are realized (ε inter = 0.36–0.37), while for decreasing aspect ratios an exponential increase in ε inter is observed reaching ε inter ∼ 0.47 at d c / d p = 5. This behaviour is ascribed to a combination of the geometrical wall effect operating in the direct vicinity of the column wall, caused by the inability of the particles to form a dense packing against the hard surface of the column wall, and particle characteristics like the size distribution, shape and surface roughness. Results are compared with the literature data to address also the importance of absolute particle size in studying structure–transport relations in packed beds in dependence on the aspect ratio d c / d p .

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