Mitra Surjyasish, Vo Quoc, Tran Tuan
School of Physical & Mathematical Sciences, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798.
School of Mechanical & Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798.
Soft Matter. 2021 Jun 28;17(24):5969-5977. doi: 10.1039/d1sm00339a. Epub 2021 May 28.
Soft surfaces impacted by liquid droplets trap more air underneath than their rigid counterparts. The extended lifetime of the air film not only facilitates bouncing behaviours of the impacting droplets but also increases the possibility of interactions between the air film itself and the air cavity formed inside the droplets by capillary waves. Such interactions may cause rupture of the trapped air film by a so-called dimple inversion phenomenon and suppress bouncing. In this work, we systematically investigate the relationship between air cavity collapse and air film rupture for water droplets impacting soft, hydrophobic surfaces. By constructing a bouncing-to-wetting phase diagram based on the rupturing dynamics of the trapped air film, we observe that the regime in which air film rupture is induced by dimple inversion consistently separates the bouncing regime and the one in which wetting is caused by random rupture. We also found that air film rupture by dimple inversion in-turn affects both the collapsing dynamics of the air cavity and the resulting high-speed jet. We then provide a detailed characterisation of the collapsing dynamics of the air cavity and subsequent jetting.
与刚性表面相比,受液滴撞击的柔软表面下方会捕获更多空气。气膜寿命的延长不仅有利于撞击液滴的弹跳行为,还增加了气膜本身与毛细波在液滴内部形成的气腔之间相互作用的可能性。这种相互作用可能会通过所谓的凹坑反转现象导致捕获的气膜破裂,并抑制弹跳。在这项工作中,我们系统地研究了水滴撞击柔软疏水表面时气腔坍塌与气膜破裂之间的关系。通过基于捕获气膜的破裂动力学构建弹跳 - 润湿相图,我们观察到由凹坑反转引起气膜破裂的区域始终将弹跳区域与随机破裂导致润湿的区域分开。我们还发现,由凹坑反转引起的气膜破裂反过来会影响气腔的坍塌动力学以及由此产生的高速射流。然后,我们详细描述了气腔的坍塌动力学以及随后的喷射过程。