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利用密度梯度在薄流动池中实现最大效率的交换。

Maximally efficient exchange in thin flow cells using density gradients.

作者信息

Mitchell Megan E, Majkrzak Charles F, Hoogerheide David P

机构信息

Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, MD 20899, USA.

出版信息

J Appl Crystallogr. 2024;57(5). doi: 10.1107/s1600576724007283.

Abstract

Flow cells are ubiquitous in laboratories and automated instrumentation, and are crucial for ease of sample preparation, analyte addition and buffer exchange. The assumption that the fluids have exchanged completely in a flow cell is often critical to data interpretation. This article describes the buoyancy effects on the exchange of fluids with differing densities or viscosities in thin, circular flow cells. Depending on the flow direction, fluid exchange varies from highly efficient to drastically incomplete, even after a large excess of exchange volume. Numerical solutions to the Navier-Stokes and Cahn-Hilliard equations match well with experimental observations. This leads to quantitative predictions of the conditions where buoyancy forces in thin flow cells are significant. A novel method is introduced for exchanging fluid cells by accounting for and utilizing buoyancy effects that can be essential to obtain accurate results from measurements performed within closed-volume fluid environments.

摘要

流动池在实验室和自动化仪器中无处不在,对于简化样品制备、添加分析物和缓冲液交换至关重要。认为流体在流动池中已完全交换的假设通常对数据解释至关重要。本文描述了在薄的圆形流动池中浮力对不同密度或粘度流体交换的影响。根据流动方向,即使在交换体积大大过量之后,流体交换也会从高效变化到极不完全。纳维-斯托克斯方程和相场Cahn-Hilliard方程的数值解与实验观察结果吻合良好。这导致了对薄流动池中浮力显著的条件的定量预测。引入了一种新的方法来交换流体池,该方法通过考虑和利用浮力效应,而浮力效应对于在封闭体积流体环境中进行的测量获得准确结果可能至关重要。

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