CAS Key Laboratory of Bio-inspired Materials and Interfacial Sciences , Technical Institute of Physics and Chemistry, Chinese Academy of Sciences , Beijing 100190 , China.
Future Technology College , University of Chinese Academy of Sciences , Beijing 100049 , China.
ACS Nano. 2019 Nov 26;13(11):13100-13108. doi: 10.1021/acsnano.9b05860. Epub 2019 Nov 8.
Effective droplet emission is of fundamental importance for practical application, such as agricultural sprays to painting, atomization, emulsification, and catalytic action. Highly viscous liquids are commonly used, such as printing inks, which hinder the ejection at the nozzle. A big challenge faced by people is how to obtain stable and controllable liquid droplets in a wide range of viscosities. Inspired by the rotation shaking of droplets on fiber clusters and the rotary spraying disk technique, here, we demonstrate uniform microdroplet (1-2000 mPa·s) generation in a tip-guided way that replaces the commonly confined nozzle by a double-layer spinning "sandwich" multitip disk (SSMD). A surface energy gradient induced by the margin structure of the alternating gas wedge and solid tip guides liquid to move along the solid tip, which is ejected at the end of the tip, forming a ring of droplet clusters. SSMD improves the effective droplet-jet process to 7/10 of the whole drainage process and enhances the efficiency with a production drop volume of ∼3.19 × 10 μL/h and production droplet numbers of ∼3.3 × 10 per second. Droplets can be fine-tuned between 0.1 and 1.0 mm the tip structure, liquid property, and spinning angular velocity with a narrow size distribution. This facile tip-guided design could inspire the possibility of energy-efficient droplet production techniques in various fluid applications, such as spraying and printing. It may further improve other fluid systems that serve as a crucial component for high-speed droplet manipulation, liquid transport, and water vapor capturing.
有效液滴发射对于实际应用至关重要,例如农业喷雾、雾化、乳化和催化作用。通常使用高粘度液体,如印刷油墨,这会阻碍喷嘴的喷出。人们面临的一个大挑战是如何在广泛的粘度范围内获得稳定可控的液滴。受纤维簇上液滴的旋转晃动和旋转喷涂盘技术的启发,在这里,我们展示了一种在尖端引导下的均匀微滴(1-2000 mPa·s)产生的方法,该方法用双层旋转“三明治”多尖端盘(SSMD)代替通常受限的喷嘴。交替气楔和固体尖端边缘结构引起的表面能梯度引导液体沿固体尖端移动,液体在尖端末端被喷出,形成液滴簇的环。SSMD 将有效的液滴喷射过程提高到整个排水过程的 7/10,并通过 3.19×10 μL/h 的产量滴体积和约 3.3×10 个/秒的产量滴数提高了效率。可以通过尖端结构、液体性质和旋转角速度将液滴精细调节在 0.1 到 1.0 毫米之间,具有较窄的尺寸分布。这种简单的尖端引导设计可能会激发各种流体应用中节能型液滴生产技术的可能性,例如喷雾和印刷。它可能进一步改进其他作为高速液滴处理、液体输送和水蒸气捕获的关键组件的流体系统。