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相关论文: Correlation of the dynamic contact angle with the …

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This work presents a combined experimental and theoretical study of dynamic contact angle hysteresis using liquid bridges under cyclic compression and stretching between two identical plates. Under various loading rates, contact angle…

软凝聚态物质 · 物理学 2022-08-23 Zhang Shi , Yi Zhang , Mingchao Liu , Dorian A. H. Hanaor , Yixiang Gan

In part 1, we proposed a model of dynamics of wetting for slow movements near a contact line formed at the interface of two immiscible fluids and a solid when viscous dissipation remains bounded. The contact line is not a material line and…

经典物理 · 物理学 2008-01-15 Henri Gouin

We use a lattice Boltzmann algorithm for liquid-gas coexistence to investigate the steady state interface profile of a droplet held between two shearing walls. The algorithm solves the hydrodynamic equations of motion for the system.…

软凝聚态物质 · 物理学 2009-11-07 A. J. Briant , P. Papatzacos , J. M. Yeomans

Understanding the physics of a three-phase contact line between gas, liquid, and solid is important for numerous applications. At the macroscale, the three-phase contact line response to an external force action is often characterized by a…

Given the importance of dynamic contact angle, its numerous applications and the complexity and difficulty of use of available approaches, here we present a new simple semi-empirical models for estimation of dynamic contact angle's…

流体动力学 · 物理学 2019-09-18 Pooyan Heravi , Zung-Hang Wei , Farschad Torabi

In this work, the motion of a 2-D drop on a surface with given wettability gradient is studied numerically by a hybrid lattice-Boltzmann finite-difference method using the multiple-relaxation-time collision model. We incorporate the…

流体动力学 · 物理学 2014-12-09 Jun-Jie Huang , Haibo Huang , Xinzhu Wang

We account for the presence of surface charges towards describing variations in the dynamic contact angle of an advancing liquid-gas meniscus. Starting from the thin-film based formalism, we present closed-form analytical expressions…

流体动力学 · 物理学 2015-09-11 Palash V. Acharya , Kaustav Chaudhury , Suman Chakraborty

We present a model based on the lattice Boltzmann equation that is suitable for the simulation of dynamic wetting. The model is capable of exhibiting fundamental interfacial phenomena such as weak adsorption of fluid on the solid substrate…

During oscillatory wetting, a phase retardation emerges between contact angle variation and contact line velocity, presenting as a hysteresis loop in their correlation -- an effect we term dynamic hysteresis. This phenomenon is found to be…

流体动力学 · 物理学 2024-11-27 Jiaxing Shen , Yaerim Lee , Yuanzhe Li , Stéphane Zaleski , Gustav Amberg , Junichiro Shiomi

A dynamic wetting problem is studied for a moving thin fiber inserted in fluid and with a chemically inhomogeneous surface. A reduced model is derived for contact angle hysteresis by using the Onsager principle as an approximation tool. The…

流体动力学 · 物理学 2020-12-02 Xianmin Xu , Xiaoping Wang

We study the dynamics of the interface between two immiscible fluids in contact with a chemically homogeneous moving solid plate. We consider the generic case of two fluids with any viscosity ratio and of a plate moving in either directions…

流体动力学 · 物理学 2015-06-15 T. S. Chan , S. Srivastava , A. Marchand , B. Andreotti , L. Biferale , F. Toschi , J. H. Snoeijer

We show that, when a single relaxation time lattice Boltzmann algorithm is used to solve the hydrodynamic equations of a binary fluid for which the two components have different viscosities, strong spurious velocities in the steady state…

计算物理 · 物理学 2008-12-09 C. M. Pooley , H. Kusumaatmaja , J. M. Yeomans

The role of surface tension and wettability in the dynamics of air-liquid interfaces during immiscible fluid displacement flows in capillary tube driven by pressure has been investigated. The contact angle and capillary number drive the…

流体动力学 · 物理学 2016-10-26 Changfei Yan , Huihe Qiu

A mathematically challenging model of dynamic wetting as a process of interface formation has been, for the first time, fully incorporated into a numerical code based on the finite element method and applied, as a test case, to the problem…

流体动力学 · 物理学 2015-06-04 James Sprittles , Yulii Shikhmurzaev

In 1805, Young was the first who introduced an expression for contact angle in static, but today, the motion of the contact-line formed at the intersection of two immiscible fluids and a solid is still subject to dispute. By means of the…

经典物理 · 物理学 2008-01-22 Henri Gouin

Contact angle is an essential characteristic in wetting, capillarity and moving contact line; however, although contact angle phenomena are effectively simulated, an accurate and real-time measurement for contact angle has not been well…

计算物理 · 物理学 2018-01-23 Binghai Wen , Bingfang Huang , Zhangrong Qin , Chunlei Wang , Chaoying Zhang

We discuss the equilibrium condition for a liquid that partially wets a solid on the level of intermolecular forces. Using a mean field continuum description, we generalize the capillary pressure from variation of the free energy and show…

流体动力学 · 物理学 2009-11-13 Jacco H. Snoeijer , Bruno Andreotti

We present a systematic study of capillary filling for a binary fluid by using mesoscopic a lattice Boltzmann model describing a diffusive interface moving at a given contact angle with respect to the walls. We compare the numerical results…

元胞自动机与格子气 · 物理学 2008-01-29 S. Chibbaro , L. Biferale , F. Diotallevi , S. Succi

In this paper, we investigate the dynamics of an incompressible viscous Navier-Stokes fluid evolving above a one-dimensional flat surface. The fluid is subject to a uniform gravitational field and capillary forces acting along the free…

偏微分方程分析 · 数学 2026-02-19 Xiaoding Yang

We study the contact angle hysteresis and morphology changes of a liquid drop sitting on a solid substrate inclined with respect to the horizontal at an angle $\alpha$. This one is always smaller than the critical one, $\alpha_{crit}$,…

流体动力学 · 物理学 2019-04-24 Pablo D. Ravazzoli , Ingrith Cuellar , Alejandro G. González , Javier A. Diez
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