NUCLEAR-MAGNETIC-RESONANCE IN CHEMICAL-ENGINEERING - PRINCIPLES AND APPLICATIONS

被引:113
作者
GLADDEN, LF
机构
[1] University of Cambridge, Department of Chemical Engineering, Cambridge, CB2 3RA, Pembroke Street
关键词
D O I
10.1016/0009-2509(94)00129-4
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
In recent years chemical engineers have shown an increasing interest in non-invasive measurement techniques; Nuclear Magnetic Resonance (NMR) is perhaps the ultimate technique of this kind. Over the past 10 years notable developments have been made in both spectrometer hardware and our ability to understand and manipulate nuclear spin interactions, and it is now possible to address research areas in catalysis, materials science, mass transfer and flow visualisation which are of real interest to chemical engineers. This review is divided into two sections. Part I identifies three broad categories of magnetic resonance measurements: Spectroscopy, diffusion measurement and imaging and outlines the basic principles underlying these experiments. A summary of the various nuclear spin interactions and the chemical information they yield is given. In progressing to the introduction of diffusion measurements, the application of magnetic field gradients is discussed and the basic Pulsed Gradient Spin Echo (PGSE) and related measurement techniques are presented. The principles of NMR imaging are then described in the context of the two popular experimental schemes: projection-reconstruction and spin-warp imaging. The principles and application of parameter-selective imaging experiments are outlined and limitations on attainable resolution are noted. Extension of NMR imaging to the study of flow phenomena is also discussed. Part II of the review reports a number of examples of NMR methods applied to problems of direct relevance to chemical engineers. This literature survey starts with an overview of applications of NMR spectroscopy in the fields of catalysis, adsorption, measurement of phase equilibria and the consideration of NMR as a quality control technique. The use of PGSE methods to study diffusion phenomena is discussed, with particular emphasis being placed on how theoretical models in combination with NMR experiments are being used to gain insight into transport processes occurring within porous media. Recent developments in NMR imaging and their application to the study of ceramics processing, polymers, porous media, catalysis, food processing, filtration processes, and transport within reactors and packed columns are also presented. Finally, the state-of-the-art in NMR dow imaging studies is discussed and the ability of NMR to study two-phase how phenomena is highlighted.
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收藏
页码:3339 / 3408
页数:70
相关论文
共 452 条
  • [1] EXPERIMENTAL-OBSERVATIONS OF PARTICLE MIGRATION IN CONCENTRATED SUSPENSIONS - COUETTE-FLOW
    ABBOTT, JR
    TETLOW, N
    GRAHAM, AL
    ALTOBELLI, SA
    FUKUSHIMA, E
    MONDY, LA
    STEPHENS, TS
    [J]. JOURNAL OF RHEOLOGY, 1991, 35 (05) : 773 - 795
  • [2] Ablett S., 1992, Trends in Food Science & Technology, V3, P246
  • [3] OPTIMIZATION OF CONTINUOUS WAVE NUCLEAR MAGNETIC-RESONANCE TO DETERMINE INSITU VOLUME FRACTIONS AND INDIVIDUAL FLOW-RATES IN 2 COMPONENT MIXTURES
    ABOUELWAFA, MSA
    KENDALL, EJM
    [J]. REVIEW OF SCIENTIFIC INSTRUMENTS, 1979, 50 (12) : 1545 - 1549
  • [4] ABRAGAM A, 1961, PRINCIPLES NUCLEAR M
  • [5] ACKERMAN JL, 1991, ADV TOMOGRAPHIC IMAG
  • [6] ACKERMAN JL, 1988, P C NONDESTRUCTIVE T, P88
  • [7] NUCLEAR-MAGNETIC-RESONANCE IMAGING OF A SINGLE CELL
    AGUAYO, JB
    BLACKBAND, SJ
    SCHOENIGER, J
    MATTINGLY, MA
    HINTERMANN, M
    [J]. NATURE, 1986, 322 (6075) : 190 - 191
  • [8] A GENERALIZED FORMULATION OF DIFFUSION EFFECTS IN MU-M RESOLUTION NUCLEAR MAGNETIC-RESONANCE IMAGING
    AHN, CB
    CHO, ZH
    [J]. MEDICAL PHYSICS, 1989, 16 (01) : 22 - 28
  • [9] VELOCITY AND CONCENTRATION MEASUREMENTS OF SUSPENSIONS BY NUCLEAR-MAGNETIC-RESONANCE IMAGING
    ALTOBELLI, SA
    GIVLER, RC
    FUKUSHIMA, E
    [J]. JOURNAL OF RHEOLOGY, 1991, 35 (05) : 721 - 734
  • [10] ALTOBELLI SA, 1992, 1992 NSF DOE WORKSH