TY - JOUR
T1 - Comparison of first and second generation analytical silica monoliths by pore-scale simulations of eddy dispersion in the bulk region
AU - Hlushkou, Dzmitry
AU - Hormann, Kristof
AU - Höltzel, Alexandra
AU - Khirevich, Siarhei
AU - Seidel-Morgenstern, Andreas
AU - Tallarek, Ulrich
PY - 2013/8/16
Y1 - 2013/8/16
N2 - We present the first quantitative comparison of eddy dispersion in the bulk macropore (flow-through) space of 1st and 2nd generation analytical silica monoliths. Based on samples taken from the bulk region of Chromolith columns, segments of the bulk macropore space were physically reconstructed by confocal laser scanning microscopy to serve as models in pore-scale simulations of flow and dispersion. Our results cover details of the 3D velocity field, macroscopic Darcy permeability, transient and asymptotic dispersion behavior, and chromatographic band broadening, and thus correlate morphological, microscopic, and macroscopic properties. A complete set of parameters for the individual eddy dispersion contributions in the bulk was obtained from a Giddings analysis of the simulated plate height data. The identified short-range structural heterogeneities correspond to the average domain size of the respective monoliths. Our plate height curves show that structural improvements in the bulk morphology of 2nd generation monoliths play only a minor role for the observed improvement in overall column efficiency. The results also indicate a topological dissimilarity between 1st and 2nd generation analytical silica monoliths, which raises the question how the domain size of silica monoliths can be further decreased without compromising the structural homogeneity of the bed.
AB - We present the first quantitative comparison of eddy dispersion in the bulk macropore (flow-through) space of 1st and 2nd generation analytical silica monoliths. Based on samples taken from the bulk region of Chromolith columns, segments of the bulk macropore space were physically reconstructed by confocal laser scanning microscopy to serve as models in pore-scale simulations of flow and dispersion. Our results cover details of the 3D velocity field, macroscopic Darcy permeability, transient and asymptotic dispersion behavior, and chromatographic band broadening, and thus correlate morphological, microscopic, and macroscopic properties. A complete set of parameters for the individual eddy dispersion contributions in the bulk was obtained from a Giddings analysis of the simulated plate height data. The identified short-range structural heterogeneities correspond to the average domain size of the respective monoliths. Our plate height curves show that structural improvements in the bulk morphology of 2nd generation monoliths play only a minor role for the observed improvement in overall column efficiency. The results also indicate a topological dissimilarity between 1st and 2nd generation analytical silica monoliths, which raises the question how the domain size of silica monoliths can be further decreased without compromising the structural homogeneity of the bed.
KW - Direct numerical simulation
KW - Domain size
KW - Eddy dispersion
KW - Morphological analysis
KW - Radial heterogeneity
KW - Silica monoliths
UR - http://www.scopus.com/inward/record.url?scp=84880513235&partnerID=8YFLogxK
U2 - 10.1016/j.chroma.2013.06.039
DO - 10.1016/j.chroma.2013.06.039
M3 - Article
C2 - 23845759
AN - SCOPUS:84880513235
SN - 0021-9673
VL - 1303
SP - 28
EP - 38
JO - Journal of Chromatography A
JF - Journal of Chromatography A
ER -