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Dissipative particle dynamics of diffusion-NMR requires high Schmidt-numbers

机译:扩散NMR的耗散粒子动力学要求高Schmidt数

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We present an efficient mesoscale model to simulate the diffusion measurement with nuclear magnetic resonance (NMR). On the level of mesoscopic thermal motion of fluid particles, we couple the Bloch equations with dissipative particle dynamics (DPD). Thereby we establish a physically consistent scaling relation between the diffusion constant measured for DPD-particles and the diffusion constant of a real fluid. The latter is based on a splitting into a centre-of-mass contribution represented by DPD, and an internal contribution which is not resolved in the DPD-level of description. As a consequence, simulating the centre-of-mass contribution with DPD requires high Schmidt numbers. After a verification for fundamental pulse sequences, we apply the NMR-DPD method to NMR diffusion measurements of anisotropic fluids, and of fluids restricted by walls of microfluidic channels. For the latter, the free diffusion and the localisation regime are considered. Published by AIP Publishing.
机译:我们提出了一种有效的中尺度模型来模拟核磁共振(NMR)的扩散测量。在流体粒子的介观热运动水平上,我们将Bloch方程与耗散粒子动力学(DPD)耦合。因此,我们在为DPD颗粒测量的扩散常数与实际流体的扩散常数之间建立了物理上一致的比例关系。后者是基于对DPD表示的质心贡献和在DPD描述级别中未解决的内部贡献的划分。结果,用DPD模拟质量中心的贡献需要很高的施密特数。在对基本脉冲序列进行验证之后,我们将NMR-DPD方法应用于各向异性流体以及受微流体通道壁限制的流体的NMR扩散测量。对于后者,考虑了自由扩散和定位机制。由AIP Publishing发布。

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