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填充柱中流动的轴向发展和径向不均匀性。

Axial development and radial non-uniformity of flow in packed columns.

作者信息

Park Jaekeun C, Raghavan Karthik, Gibbs Stephen J

机构信息

Center for Interdisciplinary Magnetic Resonance, National High Magnetic Field Laboratory, Florida State University, Tallahassee 32310, USA.

出版信息

J Chromatogr A. 2002 Feb 1;945(1-2):65-81. doi: 10.1016/s0021-9673(01)01531-x.

Abstract

Flow inhomogeneity and axial development in low-pressure chromatographic columns have been studied by magnetic resonance imaging velocimetry. The columns studied included (a) an 11.7-mm I.D. column packed with either 50 microm diameter porous polyacrylamide, or 99 or 780 microm diameter impermeable polystyrene beads, and (b) a 5-mm I.D. column commercially packed with 10 microm polymeric beads. The packing methods included gravity settling, slurry packing, ultrasonication, and dry packing with vibration. The magnetic resonance method used averaged apparent fluid velocity over both column cross-sections and fluid displacements greater than one particle diameter and hence permits assessment of macroscopic flow non-uniformities. The results confirm that now non-uniformities induced by the conical distributor of the 11.7-mm I.D. column or the presence of voids at the column entrance relax on a length scale of the column radius. All of the 11.7-mm I.D. columns examined exhibit near wall channeling within a few particle diameters of the wall. The origins of this behavior are demonstrated by imaging of the radial dependence of the local porosity for a column packed with 780 microm beads. Columns packed with the 99-microm beads exhibit reduced flow in a region extending from ten to three-to-five particle diameters from the wall. This velocity reduction is consistent with a reduced porosity of 0.35 in this region as compared to approximately 0.43 in the bulk of the column. Ultrasonicated and dry-packed columns exhibit enhanced flow in a region located between approximately eight and 20 particle diameters from the wall. This enhancement maybe caused by packing density inhomogeneity and/or particle size segregation caused by vibration during the packing process. No significant non-uniformities on length scales of 20 microm or greater were observed in the commercially packed column packed with 10 microm particles.

摘要

采用磁共振成像测速技术研究了低压色谱柱中的流动不均匀性和轴向发展情况。所研究的色谱柱包括:(a) 内径为11.7毫米的色谱柱,填充有直径为50微米的多孔聚丙烯酰胺,或直径为99或780微米的不可渗透聚苯乙烯珠粒;(b) 内径为5毫米的色谱柱,市售填充有10微米的聚合物珠粒。填充方法包括重力沉降、匀浆填充、超声处理以及振动干填充。所采用的磁共振方法对色谱柱横截面和大于一个颗粒直径的流体位移上的平均表观流体速度进行了测量,因此可以评估宏观流动的不均匀性。结果证实,内径为11.7毫米的色谱柱的锥形分布器所引起的流动不均匀性或色谱柱入口处的空隙在柱半径的长度尺度上会逐渐减弱。所有检测的内径为11.7毫米的色谱柱在壁面附近几个颗粒直径范围内均表现出近壁通道现象。对于填充有780微米珠粒的色谱柱,通过对局部孔隙率的径向依赖性进行成像,证明了这种现象的起源。填充有99微米珠粒的色谱柱在距壁面十到三至五个颗粒直径的区域内流动减少。与色谱柱主体中约0.43的孔隙率相比,该区域孔隙率降低至0.35,这与流速降低是一致的。超声处理和干填充的色谱柱在距壁面约八个至二十个颗粒直径之间的区域内流动增强。这种增强可能是由填充过程中的振动导致的填充密度不均匀和/或颗粒尺寸分离引起的。在填充有10微米颗粒的市售色谱柱中,未观察到20微米或更大长度尺度上的明显不均匀性。

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