论文标题
具有可调速度的三维印刷液体二极管:液体收集和运输的设计指南和应用
Three-Dimensional Printed Liquid Diodes with Tunable Velocity: Design Guidelines and Applications for Liquid Collection and Transport
论文作者
论文摘要
在开放通道中的方向性和自构流具有多种应用,包括微流体和医疗设备,工业过滤过程,雾化和冷凝设备。在这里,我们提出了多功能的三维(3D)打印的液体二极管,该二极管可以在长距离上自发单向流动,以获得各种液体接触角。通常,我们可以在数十至数百毫米的距离内达到平均每秒几毫米的流速。二极管有两个关键的设计原则。首先,突然在通道的宽度中延伸,结合一个小凹凸,螺距,确保液体在向后的方向上固定。其次,引入了可调节的储层Bulga,以通过不同的膨胀角度操纵液体速度。使用实验和晶格Boltzmann模拟的组合,我们对具有变化的接触角(CA),音高高度和Bulga角的通道内的流动行为和速度进行了全面分析。这为制造定制液体二极管制造的准则具有最佳的潜在应用设计。作为一项可行性调查,我们测试了设计的设计,以使雾中的水和随后的运输上山。
Directional and self-propelled flow in open channels has a variety of applications, including microfluidic and medical devices, industrial filtration processes, fog-harvesting and condensing apparatuses. Here, we present versatile three-dimensional (3D)-printed liquid diodes that enable spontaneous unidirectional flow over long distances for a wide range of liquid contact angles. Typically, we can achieve average flow velocities of several millimeters per second over a distance of tens to hundreds of millimeters. The diodes have two key design principles. First, a sudden widening in the channels' width, in combination with a small bump, the pitch, ensure pinning of the liquid in the backward direction. Second, an adjustable reservoir, the bulga, is introduced to manipulate the liquid velocity with differing expansion angles. Using a combination of experiments and lattice Boltzmann simulations, we provide a comprehensive analysis of the flow behavior and speed within the channels with varying contact angles (CA), pitch heights and bulga angles. This provides guidelines for the fabrication of bespoke liquid diodes with optimal design for their potential applications. As a feasibility investigation, we test our design for condensation of water from fog and subsequent transport uphill.