On mechanism of the bubble bouncing from hydrophilic and hydrophobic solid surfaces

J. Zawała, Piotr Zawała, K. Małysa
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引用次数: 3

Abstract

Abstract The kinetics of collision and bouncing of an air bubble on hydrophilic and hydrophobic solid surfaces immersed in distilled water is reported. We carried out the experiments and compared the bubble collision and bouncing courses on the stagnant and vibrating, with a controlled frequency and amplitude, solid/liquid interface. For stagnant interface differences in the outcome of the bubble collisions with hydrophilic and hydrophobic solid surfaces are resulting from different stability of the intervening liquid film formed between the colliding bubble and these surfaces. The liquid film was unstable at Teflon surface, where the three-phase contact (TPC) and the bubble attachment were observed, after dissipation of most of the kinetic energy associated with the bubble motion. For vibrated solid surface it was shown that kinetics of the bubble bouncing is independent on the hydrophilic/hydrophobic properties of the surface. Similarly like at water/glass hydrophilic interface, even at highly hydrophobic Teflon surface time of the bubble collisions and bouncing was prolonged almost indefinitely. This was due to the fact that the energy dissipated during the collision was re-supplied via interface vibrations with a properly adjusted acceleration. The analysis of the bubble deformation degree showed that this effect is related to a constant bubble deformation, which determined constant radius of the liquid film, large enough to prevent the draining liquid film from reaching the critical thickness of rupture at the moment of collision. The results obtained prove that mechanism of the bubble bouncing from various interfaces depends on interrelation between rates of two simultaneously going processes: (i) exchange between kinetic and surface energies of the system and (ii) drainage of the liquid film separating the interacting interfaces.
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亲疏水固体表面气泡弹跳机理研究
摘要研究了气泡在蒸馏水中与亲疏水固体表面的碰撞和弹跳动力学。在控制频率和振幅、固液界面的滞动和振动条件下,对气泡碰撞和弹跳过程进行了实验对比。对于停滞界面,气泡与亲疏水固体表面碰撞结果的差异是由于碰撞气泡与亲疏水固体表面之间形成的中间液膜的稳定性不同造成的。液膜在聚四氟乙烯表面不稳定,存在三相接触(TPC)和气泡附着,气泡运动相关的大部分动能耗散后。对于振动的固体表面,气泡的弹跳动力学与表面的亲疏水性无关。与水/玻璃亲水性界面相似,即使在高度疏水性的聚四氟乙烯表面,气泡碰撞和弹跳的时间也几乎无限期延长。这是由于在碰撞过程中消耗的能量通过界面振动在适当调整的加速度下重新提供。对气泡变形程度的分析表明,这种影响与恒定的气泡变形有关,而恒定的气泡变形决定了液膜的恒定半径,该半径大到足以防止排液膜在碰撞时刻达到破裂的临界厚度。结果表明,气泡从不同界面反弹的机理取决于两个同时进行的过程速率之间的相互关系:(i)系统的动能和表面能之间的交换;(ii)分离相互作用界面的液膜的排水。
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