首页> 外文会议>ASME International Conference on Micro/Nanoscale Heat and Mass Transfer >EXPERIMENTAL AND SIMULATION STUDY ON MOTION OF AN ISOLATED LIQUID PLUG INSIDE A DRY CIRCULAR CAPILLARY
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EXPERIMENTAL AND SIMULATION STUDY ON MOTION OF AN ISOLATED LIQUID PLUG INSIDE A DRY CIRCULAR CAPILLARY

机译:干圆毛细管内分离液体塞运动的实验和仿真研究

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Classical study of motion of a single liquid plug (water) inside a micro/mini capillary tube is revisited to understand the contribution of meniscus friction and effect of contact angle hysteresis on the pressure required to initiate the motion of liquid plug of different L/D ratio. Experiments are carried out by injecting a known mass flow rate of air to push the liquid plug from rest. While the plug is at rest, as the air pressure increases linearly, the menisci deform till a limiting value, at which the plug starts moving. The initial phase of plug motion is dominated by its acceleration, which is then opposed by wall shear, and eventually leads to a steady motion of liquid plug at constant pressure and dynamic contact angle hysteresis. Experimental results show that, the pressure required to initiate the motion of the liquid is independent of its length, indicating the dominance of static menisci friction at initial stages. Also, steady state pressure drop is observed to be much greater than that predicted by fully developed tube flow. The flow is simulated in COMSOL using level set method. Simulation results agree well with the experimental result. Contribution of menisci towards static and dynamic friction and velocity development near menisci are obtained from simulations to model the friction factor for the flow.
机译:重新审视微/迷你毛细管内的单液塞(水)运动的古典研究,以了解弯月面摩擦和接触角滞后对引发不同L / D液体塞运动所需的压力的贡献比率。通过注入空气的已知质量流速来进行实验,以将液体塞从休息推动。当插头处于静止时,随着空气压力线性增加,MENISCI变形直到限制值,即插即开始移动。插头运动的初始阶段由其加速度主导,然后通过壁剪切而与壁剪,并且最终导致液体塞在恒定压力和动态接触角滞后的稳定运动。实验结果表明,启动液体运动所需的压力与其长度无关,表明初级阶段的静态肿瘤摩擦的优势。此外,观察到稳态压降远大于完全发育管流动预测的压降。使用电平设置方法在COMSOL中模拟流量。仿真结果与实验结果很好。 Menisci对Menisci附近的静态和动态摩擦和速度开发的贡献是从模拟获得的,以模拟流量的摩擦因子。

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