Elizalde Emanuel, Urteaga Raúl, Berli Claudio L A
IFIS-Litoral (UNL-CONICET) Güemes 3450, 3000, Santa Fe, Argentina.
Lab Chip. 2015 May 21;15(10):2173-80. doi: 10.1039/c4lc01487a.
The design of paper-based assays that integrate passive pumping requires a precise programming of the fluid transport, which has to be encoded in the geometrical shape of the substrate. This requirement becomes critical in multiple-step processes, where fluid handling must be accurate and reproducible for each operation. The present work theoretically investigates the capillary imbibition in paper-like substrates to better understand fluid transport in terms of the macroscopic geometry of the flow domain. A fluid dynamic model was derived for homogeneous porous substrates with arbitrary cross-sectional shapes, which allows one to determine the cross-sectional profile required for a prescribed fluid velocity or mass transport rate. An extension of the model to slit microchannels is also demonstrated. Calculations were validated by experiments with prototypes fabricated in our lab. The proposed method constitutes a valuable tool for the rational design of paper-based assays.
集成被动泵送的纸质分析方法的设计需要对流体传输进行精确编程,而这必须编码在基底的几何形状中。在多步过程中,这一要求变得至关重要,因为在每个操作中,流体处理都必须准确且可重复。本工作从理论上研究了类纸基底中的毛细管吸液现象,以便根据流动区域的宏观几何形状更好地理解流体传输。针对具有任意横截面形状的均匀多孔基底推导了一个流体动力学模型,该模型可用于确定规定流体速度或质量传输速率所需的横截面轮廓。还展示了该模型对狭缝微通道的扩展。通过在我们实验室制造的原型进行实验验证了计算结果。所提出的方法是用于合理设计纸质分析方法的宝贵工具。