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用于液相色谱的椭球型颗粒:流体力学、效率和壁效应。

Ellipsoidal particles for liquid chromatography: Fluid mechanics, efficiency and wall effects.

机构信息

Theoretical Separation Science Laboratory, Kroungold Analytical Inc., 1299 Butler Pike, Blue Bell, PA 19422, United States.

Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, MN 55455-0132, United States.

出版信息

J Chromatogr A. 2018 Dec 14;1580:30-48. doi: 10.1016/j.chroma.2018.09.051. Epub 2018 Oct 6.

Abstract

Ellipsoidal particles are investigated as packing media for liquid chromatography using high resolution fluid mechanics and Brownian dynamics simulations. The simulations are conducted with packed capillary columns, as well as beds with periodic boundary conditions (PBCs) to study transport in the absence of wall effects. The performance of ellipsoidal particles is evaluated over a range of aspect ratios. The definition of effective diameter used to compare sphere and ellipsoidal particle performance metrics is presented and discussed along with scaling relationships which are necessary to compare sphere and ellipsoidal particle packs. Ellipsoidal particle packs are found to be inferior to sphere packs using PBCs to study chromatographic dispersion. The separation impedance was calculated with PBCs and shown to be approximately the same with ellipsoidal particles as those of spheres. Efficiency of ellipsoidal packs, as measured by plate height, is lower than spherical particle packs and the pressure drop is higher than sphere packs when using PBCs. However, a smaller wall effect is shown for ellipsoidal particles when packing cylindrical capillaries. Radial variations in packing porosity and in flow within the wall region are smaller for ellipsoidal packings. The minimum reduced plate height and the separation impedance for the packed capillaries clearly demonstrate the advantages of ellipsoidal particles compared to spherical particles. This predicted performance advantage remains to be demonstrated in actual practice.

摘要

采用高分辨率流体力学和布朗动力学模拟研究了椭球颗粒作为液相色谱填充介质的性能。模拟采用填充毛细管柱和具有周期性边界条件(PBC)的床层进行,以研究无壁效应时的传输。在一系列纵横比范围内评估了椭球颗粒的性能。本文提出了用于比较球形和椭球形颗粒性能指标的有效直径定义,并讨论了必要的缩放关系,以便比较球形和椭球形颗粒的填充床层。研究发现,在使用 PBC 研究色谱分散时,椭球颗粒填充床层的性能不如球形颗粒填充床层。使用 PBC 计算了分离阻抗,结果表明椭球颗粒的分离阻抗与球形颗粒的分离阻抗大致相同。与球形颗粒填充床层相比,椭球颗粒填充床层的效率(以板高衡量)较低,压降较高。然而,当使用 PBC 填充圆柱形毛细管时,椭球颗粒的壁效应较小。椭球颗粒填充床层的填充孔隙率和壁区流动的径向变化较小。填充毛细管的最小板高和分离阻抗清楚地表明了与球形颗粒相比,椭球颗粒具有优势。这种预测的性能优势仍有待在实际应用中得到证明。

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