Tang Shi, Li Qing, Li Wanxin, Chen Shoutian
School of Energy Science and Engineering, Central South University, Changsha 410083, China.
Langmuir. 2024 Aug 12. doi: 10.1021/acs.langmuir.4c01809.
Coalescence-induced droplet jumping has attracted significant attention in recent years. However, achieving a high jumping velocity while predictably regulating the jumping direction of the merged droplets by simple superhydrophobic structures remains a challenge. In this work, a novel V-shaped superhydrophobic surface with a ridge is conceived for enhanced and predictably guided coalescence-induced droplet jumping. By conducting experiments and lattice Boltzmann simulations, it is found that the presence of a ridge in the V-shaped superhydrophobic surface can modify the fluid dynamics during the droplet coalescence process, resulting in a much higher droplet jumping velocity than that achieved by the V-shaped superhydrophobic surface without a ridge. The enhancement of the droplet jumping velocity is mainly attributed to the combined effect of the earlier and more sufficient impingement between the liquid bridge and the ridge, as well as the accelerated droplet contraction by redirecting the internal liquid flow toward the jumping direction. A high normalized jumping velocity of is achieved by the newly designed surface, with a 930% increase in the energy conversion efficiency in comparison with that on a flat surface. Moreover, adjusting the opening direction of the V-groove at different groove angles is found to be an effective method to regulate the droplet jumping direction and expand the range of the jumping angle. Particularly, the droplet jumping angle can be well predicted based on the rotational angle (ω) and the groove angle (α), i.e., θ ≈ 90° - 0.5α ω.
近年来,聚并诱导液滴跳跃引起了广泛关注。然而,通过简单的超疏水结构在可预测地调节合并液滴跳跃方向的同时实现高跳跃速度仍然是一个挑战。在这项工作中,设计了一种带有脊的新型V形超疏水表面,用于增强和可预测地引导聚并诱导液滴跳跃。通过实验和格子玻尔兹曼模拟发现,V形超疏水表面中脊的存在可以改变液滴聚并过程中的流体动力学,导致液滴跳跃速度比没有脊的V形超疏水表面高得多。液滴跳跃速度的提高主要归因于液桥与脊之间更早、更充分的碰撞以及通过将内部液流重新导向跳跃方向而加速的液滴收缩。新设计的表面实现了 的高归一化跳跃速度,与平面相比,能量转换效率提高了930%。此外,发现调整不同槽角的V形槽的开口方向是调节液滴跳跃方向和扩大跳跃角范围的有效方法。特别是,液滴跳跃角可以根据旋转角(ω)和槽角(α)很好地预测,即θ≈90° - 0.5α ω。