首页> 外文期刊>Journal of Micromechanics and Microengineering >Low Reynolds number flow across an array of cylindrical microposts in a microchannel and figure-of-merit analysis of micropost-filled microreactors
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Low Reynolds number flow across an array of cylindrical microposts in a microchannel and figure-of-merit analysis of micropost-filled microreactors

机译:低雷诺数流过微通道中的圆柱微柱阵列,并对微柱填充微反应器进行品质因数分析

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摘要

Micropost-filled reactors are commonly found in many micro-total analysis system applications because of their large surface area for the surrounding volume. Design rules for micropost-filled reactors are presented here to optimize the performance of a micro-preconcentrator, which is a component of a micro-gas chromatography system. A key figure of merit for the performance of the micropost-filled preconcentrator is to minimize the pressure drop while maximizing the surface-area-to-volume ratio for a given overall channel geometry. Several independent models from the literature are used to predict the flow resistance across the micropost-filled channels for low Reynolds number flows. The pressure drop can be expressed solely as a function of a couple of design parameters: β = a/s, the ratio of the radius of each post to the half-spacing between two adjacent posts, and N, the number of microposts in a row. Pressure drop measurements are performed to experimentally corroborate the flow resistance models and the optimization scheme using the figure of merit. As the number of microposts for a given β increases in a given channel size, a greater surface-area-to-volume ratio will result for a fixed pressure drop. Therefore, increasing the arrays of posts with smaller diameters and spacing will optimize the microreactor for larger surface area for a given flow resistance, at least until Knudsen flow begins to dominate.
机译:微柱式填充反应器由于其大的表面积可用于周围体积,因此在许多微型分析系统中都非常常见。本文介绍了微柱式反应器的设计规则,以优化微预浓缩器的性能,微预浓缩器是微气相色谱系统的组成部分。微型柱式预浓缩器性能的一个关键性能指标是,对于给定的整体通道几何形状,将压降最小化,同时将表面积/体积比最大化。文献中的几个独立模型用于预测低雷诺数流量通过微柱填充通道的流动阻力。压降可以仅表示为两个设计参数的函数:β= a / s,每个桩的半径与两个相邻桩之间的半间距的比值,N,一个桩中微桩的数量行。进行压降测量以利用品质因数在实验上证实流阻模型和优化方案。在给定的通道尺寸下,随着给定β的微柱数量增加,固定压降将导致更大的表面积与体积之比。因此,增加具有较小直径和间距的柱的阵列将针对给定的流动阻力将微反应器优化为具有更大的表面积,至少直到克努森流开始占主导地位为止。

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