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Magnetic resonance microimaging and numerical simulations of velocity fields inside enlarged flow cells used for coupled NMR microseparations

机译:用于耦合NMR微分离的扩大流通池内部的磁共振微成像和速度场数值模拟

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The coupling of various chemical microseparation methods with small-scale NMR detection is a growing area in analytical chemistry. The formation of enlarged flow cells within the active volume of the NMR detector can significantly increase the coil filling factor and hence the signal-to-noise ratio of the NMR spectra. However, flow cells can also lead to deterioration of the separation efficiency due to the development of complex flow patterns, the form of which depend on the particular geometry of the flow cell and the flow rate used. In this study, we investigated the flow characteristics in different flow cell geometries relevant to the coupling of capillary liquid chromatography and NMR. Computational fluid dynamics was used to simulate fluid flow inside flow cells with a volume of similar to1 muL. Magnetic resonance microimaging was used to measure experimentally the velocity fields inside these flow cells. The results showed good agreement between experiment and simulation and demonstrated that a relatively gradual expansion and contraction is necessary to avoid areas of weak recirculation and strong radial velocities, both of which can potentially compromise separation efficiency.
机译:各种化学微分离方法与小规模NMR检测的结合是分析化学领域的一个新兴领域。在NMR检测器的有效体积内形成扩大的流通池可显着增加线圈填充系数,从而增加NMR光谱的信噪比。但是,由于复杂的流动模式的发展,流通池也会导致分离效率的下降,其形式取决于流通池的特定几何形状和所使用的流速。在这项研究中,我们研究了与毛细管液相色谱法和NMR耦合相关的不同流通池几何结构中的流动特性。计算流体动力学用于模拟流通池内部的流体流动,其体积接近1μL。磁共振显微成像用于实验测量这些流通池内部的速度场。结果表明,实验和模拟之间具有良好的一致性,并表明需要相对逐步的膨胀和收缩,以避免弱回流区域和强径向速度区域,这两者都可能损害分离效率。

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