Lanzaro Alfredo, Yuan Xue-Feng
Institute for Systems Rheology, Guangzhou University, No. 230 West Outer Ring Road, Higher Education Mega-Center, Panyu District, Guangzhou 510006, China.
Micromachines (Basel). 2022 Feb 3;13(2):256. doi: 10.3390/mi13020256.
We introduce a "Rheo-chip" prototypical rheometer which is able to characterise model fluids under oscillatory flow at frequencies up to 80 Hz and nominal strain up to 350, with sample consumption of less than 1 mL, and with minimum inertial effects. Experiments carried out with deionized (DI) water demonstrate that the amplitude of the measured pressure drop ΔPM falls below the Newtonian prediction at f≥ 3 Hz. By introducing a simple model which assumes a linear dependence between the back force and the dead volume within the fluid chambers, the frequency response of both ΔPM and of the phase delay could be modeled more efficiently. Such effects need to be taken into account when using this type of technology for characterising the frequency response of non-Newtonian fluids.
我们介绍了一种“流变芯片”原型流变仪,它能够在高达80Hz的频率和高达350的名义应变下对模型流体进行振荡流特性分析,样品消耗量小于1mL,且惯性效应最小。用去离子水(DI)进行的实验表明,在f≥3Hz时,测得的压降ΔPM的幅度低于牛顿预测值。通过引入一个简单的模型,该模型假设背向力与流体腔室内的死体积之间存在线性关系,可以更有效地模拟ΔPM和相位延迟的频率响应。在使用此类技术表征非牛顿流体的频率响应时,需要考虑这些影响。