Unmanned System Research Institute, Northwestern Polytechnical University, Xi'an 710072, China.
School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore.
Phys Rev E. 2019 Jul;100(1-1):013105. doi: 10.1103/PhysRevE.100.013105.
This paper reports an interesting net fluid flow in the induced-charge electro-osmosis (ICEO) of poly(sodium 4-styrenesulfonate) (NaPSS) solutions measured through microparticle image velocimetry (μPIV). The net fluid flow is attributed to the significantly unequal cations and poly-anions of NaPSS. Owing to the phase delay effect of ions, different flow patterns appear with the alternating electric field. The inflow velocity and outflow velocity are found to be unequal and their relative magnitude shows a dependence on the electric field strength. The ICEO velocity is positively correlated with the NaPSS concentration. As NaPSS introduces the non-Newtonian effect, the well-known quadratic relationship between ICEO velocity and electric field strength in Newtonian fluids breaks. The ICEO velocity varies differently with the electric field strength as the NaPSS concentration changes. These new findings can contribute to the understanding of ICEO of complex fluids, e.g., biofluids.
本文通过微粒子图像测速(μPIV)技术报道了聚(4-苯乙烯磺酸钠)(NaPSS)溶液中诱导电荷电渗(ICEO)的有趣净流动现象。净流动归因于 NaPSS 中阳离子和聚阴离子的显著不等性。由于离子的相位延迟效应,不同的流动模式会随着交流电场的变化而出现。发现流入速度和流出速度不相等,它们的相对大小与电场强度有关。ICEO 速度与 NaPSS 浓度呈正相关。由于 NaPSS 引入了非牛顿效应,牛顿流体中熟知的 ICEO 速度与电场强度之间的二次关系被打破。当 NaPSS 浓度发生变化时,ICEO 速度随电场强度的变化方式也不同。这些新发现有助于理解复杂流体(如生物流体)的 ICEO。