Fedorowicz Kamil, Prosser Robert
School of Engineering, The University of Manchester, Manchester, M13 9PL, UK.
Sci Rep. 2024 Feb 28;14(1):4875. doi: 10.1038/s41598-024-53436-y.
The flow of liquid crystals in the presence of electric fields is investigated as a possible means of flow control. The Beris-Edwards model is coupled to a free energy incorporating electric field effects. Simulations are conducted in straight channels and in junctions. Our findings reveal that local flow mediation can be achieved by the application of spatially varying electric fields. In rectangular straight channels, we report a two-stream velocity profile arising in response to the imposed electric field. Furthermore, we observe that the flow rate in each stream scales inversely with the Miesowicz viscosities, leading to the confinement of 70% of the throughput to one half of the channel. Similar flow partitioning is also demonstrated in channel junction geometries, where we show that using external fields provides a novel avenue for flow modulation in microfluidic circuits.
研究了在电场作用下液晶的流动,将其作为一种可能的流动控制手段。将贝里斯 - 爱德华兹模型与包含电场效应的自由能耦合。在直通道和交叉点处进行了模拟。我们的研究结果表明,通过施加空间变化的电场可以实现局部流动调节。在矩形直通道中,我们报告了响应外加电场而出现的双流速度分布。此外,我们观察到每个流中的流速与米索维奇粘度成反比,导致70%的通量被限制在通道的一半。在通道交叉点几何结构中也证明了类似的流动分配,我们表明使用外部场为微流控电路中的流动调制提供了一种新途径。